Elementary Graphic Statics
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ELEMENTARY
GRAPHIC
STATICS
Whittaker's ADAMS,
H."
Practical
ARNOLD
and
ATKINS,
E.
BAMFORD.
H.
BJORLING, DAVIS,
Moving
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EX.
ELEMENTARY GRAPHIC
STATICS
BY
T.
JOHN
Lecturir
Mtuhine
in
and
Medallist
and
{City
WITH
and
Design
Heriot'WoUt Honours
A.M.I.Mech.E.
WIGHT,
Prizeman
186
in
Mechanical
of London
Guilds
64
AND
66
Institute)
ILLUSTRATIONS
"
LONDON, AND
Engineering
CO. SQ.
ST., PATERNOSTER
HART
WHITE
Movers^
Collegey Edinburgh
WHITTAKER 2
Prime
FIFTH
E.G.
AVENUE,
NEW
YORK
o
"
"
"
"
"
"
I
""
W
"
*
^
""
t
*
\
a
"
1 V'
CONTENTS
I
CHAPTER
PAGE
1
Introduction
.....
of a Force Graphic Representation Specification Force Ooncnrrent of a Ooplanar Forces Forces and Non-concurrent Compositionand Resolution Resultant of Forces Equilibrant Units
Definition
and
"
"
"
"
"
"
"
CHAPTER Composition Forces
Resolution
and
in the
Acting
Two
Oonfturrent
Triangle Worked
Out
Tripod Chain
III .
Composition Funicular
Polygon
"
Resultant
Unlike
Parallel
"
Moment
Resultant
Forces "
of Non-concurrent Forces
Moments
"
Moment of
Forces
Parallel
Like
of
of Moments Forces
Lifting
IV
Non-concurrbnt
op
a
"
Crane
Warehouse
"
CHAPTER
"
Legs
"
Rotating Crane
,33
.
"
"
"
"
Examples
"
Triangular Frame-^Shear with Simple Crane Simple Crane
Platform
Loaded
of
Notation
Problems
Practical
.
Forces
of
"
CHAPTER Simple
11 .
Resultant
"
Parallelogram Polygon of Forces
"
Bow's
"
Foucbs
op
Straight Line
same
Forces
Forces
of
II
of
a
System
.
Forces
Resultant
of
tion Graphic Representaof System Non-parallel "
of
Couples "
"
46
.
"
Vll
282178
Parallel
Forces
"
viii
CONTENTS
CHAPTER
V PAGE
Bending
Moment
Definitions
Oonatruction
"
(Concentrated Supported
Shearing
and
Load)"
Force Parabola
of
Cantilever
Loads)
S.F.
and
Loaded
Supported
"
Beam
Beam
(Compound
Beam
Overhung
"
(Compound
"
(Concentrated hung Over-
Loading)"
VI
Single Concentrated
Load
Rolling Lpad
tributed Dis-
Uniformly
"
Dead
Combined
"
.89
.
.
Rolling
Beam
Beams
Loads
Rolling
with
"
Loading)
CHAPTER
Beams
Cantilever
"
Supported
"
"
of B.M.
63
(Dietribnted Load)
Beam
(Concentrated Load) (Distributed Load) Unsymmetrically Scales
Diagrams
and
Rolling
Loads
CHAPTER
Roofs
Symmetrical
"
of
Plain
Roofs"
Tie-rod
with Truss
Distribution
"
Rafters
Simple Swiss
Compound
"
99
Loads
Dead
"
Definitions"
Frames"
VII
of
King-rod "
Truss
"
Truss"
Truss
post Truss
"
with
Lights
Pillar"
Simple
Swiss
Swiss
Truss
(Single
Truss
Inclined
and
Simple Truss
QueenFrench
"
VIII
.
Roof"
Island
135
Loading
Unsymmetrioal
Northern
Rafters
Truss
CHAPTER
Roofs
Truss"
Queen-post
Compound
"
Mansard
"
English
Types
Plam
Compound
(Right-angled Struts)" Simple King-rod (Single Struts Struts)" King-rod Truss Ties)" Belgian
.
Leading"
Tie-rod"
without
Truss
.
Overhung
Station
Roof
Roof"
.
.
Overhung
Roof
CONTENTS
ix
IX
CHAPTER
PAGB
Roofs
Presburb
Wind
"
.144 .
Calculation
Wind
Maximum to
Wind
Presanre
Pressure
Comparison
"
Saw-tooth
"
Wind
of
Determination
"
of
.
Experimental
"
Methods
Northern
or
.
Roof
Lights
with
Free
due End
Station
Island
"
"
Stress
of
Roof
"
Resnlts
Roof
CHAPTER Beams
Braced
Stanchion) Truss
"
Trapezoidal
Truss
Girder
Lintille
Girders
"
Cantilever
"
Gravity
of
Figures
Gravity Centre
^Moments
"
of
Gravity
Parallelogram Funicular
Girder
"
Inertia
of
a
Centre
"
Gravity
of
of
of
a
Section
Modulus
"
Forces
"
of Ferro-concrete
of
of
a
"
Section
Particle
Mohr's
"
"
Method
Section
XII
Walls
Retaining
.218 Case
Definitions*~Simple Pressure
Earth "
Example"
"
of
Pressure"
Water
Rankine*s Rebhann's
"
.
,
.
Theory
"
Irregular Surfaces
Inertia
of
C.G.
Gravity
of
Beam
Figures
System
the
finding
of
CHAPTER
"
.189
"
Moment
"
"
Resistance
"
Method-^ast"iron
of Inertia
Moment
of
Truss
Pratt
"
Axis
Triangle
Resistance
of Inertia
Moment "
"
of Inertia
Moment
a
BoUman
"
XI
Method
Centre
Polygon Axis
Neutral "
of
Truss
(Douhle
Pier
of
Experimental
"
Beam
Fink
"
Neutral
"
,
Braced
"
CHAPTER Centre
.166
"
(Single Stanchion)
Warren
"
Lattice
Qirders
and
Beam
Braced
X
Theory Method
"
Example Coulomb's
PREFACE
In
lecturing
of
suitable
a
of
knowledge
of
solution
the
to
and
Engineering It
is not
but
much
in
him. science
the of
of
is
be
comparatively
There
forgetting
that
there
engineers
the
useful
methods.
The
simple
who
practical most
which
in
youDg
studying appeals
the
problems,
cumbrous
all
problems
of
means
and
can,
to
easily,
too
with
an
air
difficulty.
those
are
and
intricate
equations
of
ready
a
with
the
privilege
engineering
many
methods
met
why
presents
working
mathematically
interests
of
commended re-
practice.
be
to
the
be
a
problems
the
which
the
and
graphical
reason
denied
Graphics
mystery
of
one
no
solution
mathematical
of
Construction
every
this
circumventing
clothe
to
engineering
In
search
simpler
Building
should
engineer
the
given
brilliant,
in
application
the
could
which
to
felt
always
has
text-book
Statics
Graphic
Author
students
to
of
subject the
students,
first-year want
the
on
scoff
are
of
problems work
of
graphical
hundreds
are
who
at
such xi
of
daily
first-class
solving
everyday men
methods,
is alone
life a
of
some
by
such
sufficient
PREFACE
xii
of
justification their
the
application
It
lies
only
problem
set
carefully Mere
the
with
in
out
the
the
in
methods
graphical problems.
student
to
realize
following and
out
of
of
engineering
to
worked
reading
existence
that
understood.
is
matter
be
must
pages
thoroughly
subject
every
than
worse
useless. The
aH
student
the
have
in
the
much
works
conscientiously and
problems acquired
stead
who
which
examples that
performance
will
him
useful
in
Hbbiot-Watt
Edinbubgh,
Collkgb, October
1913.
good
engineering
work.
JOHN
will
follow,
stand
of
through
T.
WIGHT.
"
"
'
"
ELEMENTARY
"
"
'
"
'
.
GRAPHIC
STATICS CHAPTER
I
INTRODUCTION
It in
is unnecessary to tell those of science,that any branch
depends, c"*
accurate
restricted that
the
to
no
small
measurement. to
a
need
few, yet
who
scientific
extent,
on
Scientific it does not
for accurate
interested
are
discovery
measurement
"
discoveryis indeed follow necessarily
measurement
is likewise
in importance of it is exeipplified practically everything around us, and in no other so profession, perhaps,is its importance and utility of engineering. In in that as significant every of engineeringits importance is undisputed, branch and its application, in conjunctionwith geometric methods, to the solution of engineeringproblems, and interest. providesa study of extreme utility Accuracy, both in drawing and in measurement, be too stronglyemphasized,for this is the cannot in the solution of all problems in keynote of success Graphic Statics. The one objectionlevelled against this science
restricted; the
A
"
"
"
I
"
"
ELEMENTARY
GRAPHIC
STATICS
is the
introduced by inaccurate liabilityto error In its applicationto drawing and measurement. engineering problems such an objectionis hardly in the valid, for, by exercising moderate care attain to an different operationsinvolved, we can of 1 per
accuracy
cent.
"
accuracy
sufficient for
all
practical purposes. Its advantages are manifold, enablingus to solve, would problems which readily and quickly,many and intricate cumbrous otherwise require much mathematical investigation.In many engineering quantities, problemswe deal with forces and velocities, and surelyit is a great in themselves,purely abstract, mind to be able to repreadvantage to the practical sent in a comparative such things on paper, if even of a few way, greaterstill to be able,by the deft use simple drawing instruments, to discover the effects produced by such forces and velocities at any point in a given system. Definition and Specificationof a Force." Before graphicalpart of the proceedingto treat the more subject,it might be well to deal brieflywith "force and its specification" which producesor tends Force is any cause Force. or to produce motion change of motion in a body. This definition is quite general in its application, conveying to us only a very vague notion of a of the effect produced force through the medium thereby,and before we can put anything on paper "
regardingit,we must few pointsconcerning
have
fuller information
the force.
on
a
3
INTRODUCTION The
necessary
Such
must specification
Point
(a)
to
force?*'
a
things,viz.
four
embody
the
are
completely specify
points a
"What
arises:
question naturally
:
"
of Application.
(b) Direction, (c) Magnitvde. Sense.
(d)
Graphic consider
of
Representation
how
of these
each
a
Force.
items
Let
"
be
can
us
now
represented
graphically. Point
"
statics if
considered
have
we
be
must
we
In
of Application.
all
forces
accurate, how
point of application,since precludes any idea of area, and make
on
how
matter
no
give
this
up
small
mathematical
"
our
of
point have
we
may
some
area, must
we
point
a
of
point
a we
purpose
of
points ;
at
mark
any
in
represent
we
idea
our
idea
the
which
to
area
For
consider
can
necessity,cover
small?
connection, and a
of
must,
paper
acting
as
then
the
calculations
our
in
this
application as the
given
name
point." Take a
for train.
calling
of the
them
yet
which
accuracy
of
the will
of
"points force be
applicationby
small
so
end
speaking, the point in
an
engine pushing
stance, points of application,in this inbuffers, in themselves presenting an
appreciable area, area
of
case
The the
are
whole
the
illustration
of
of
comparison
train
acts,
as
to
the
justify our
to
Generally exact region
application."
applicationis
satisfied a
the
in
so
if
pencil dot
that we on
the the
demands
represent the
paper.
the
of
point
ELEMENTARY Direction.
at
see
point
next
force.
the
that
glance
a
oa
to
rotate
oa,
we
would
It does
about a
make that
of
the
force
a,
unless
of
makes
have
we
to
line from
measurements.
our
in
o
the
point which that
straight
line
measured drawn
providedwe be
measured.
immaterial,
to
state
the
of
The
absolute
provided that
the
always
in the direccon*
of
that
the
wise. counterclock-
or
the
force
attention.
is the
Anything
represented by suitable
length or
taken
being
to
clock
some
unit
measure-
our
adopted being
be
can
what
quite immaterial
our
this line
direction, the
magnitude demands
next
be
can
The
all care
trary a
horizontal
a
from
measure
tion
of
draw
Fig. 1, we
right
make
one
"
some
which
to
Magnitude.
angle
an
datum
ments,
bands
direction
or
we
the
force.
our
line ox^ and
of
any
base
to
rotation
we
predetermined
From
1
have
ideas
our
make
yj
1
imagine the line new position of
direction
new
clear to say
could
we
is the
Fig.
to
might
and, in each
not, however,
more
to be considered
force
the
o
have
STATICS
By referring
of directions, for
number
any
The
"
of
direction
GRAPHIC
we
scale
scale.
make
the
to which
length
of
length of
the the
It
a
is
line,
it is to line
is
line,the
6
INTRODXJCTION
quantity
long
example, 4
or
scale
our
of
the
more
must
1
be
2'5
of
choice
forces
with at
space
scale
a
inches, and
depends
which
we
disposal on
our
in.
3
length
the
not
fraction
a
of
possibleextent
our
while
the
size
larger
the
scale, the
other
of
the
drawing-paper. is
drawing
percentage
words, the
larger
on
The
is,that the maximum
drawings varies,
our
also
dealing, and
in
error
of
magnitude
the
on
are
in mind
important point to keep
in
be
accordingly,but, if lbs.,then
in. =20
at
line
the
of
force
a
less.
The
the
represent
to
whether
matter
not
fixed
line
or
the
wish
we
say
in.,if the scale be chosen be
ment measure-
harmony.
lbs. ; it does
50
the scale of
represents and
it
all in
are
For
that
the
constant,
a
less,or,
is the
error
the
scale
the
that
so
greater
the
accuracy.
Sense, is the
"
The
only point remaining
of
sense
represented
three
the
still be uncertain
from
the
push
a
"
arrowhead In
point but on
so
the
the
that
minus
or
towards
this the
to
in all cases,
60 lbs.,pullingon
indicated
with
the
sense
negative forces the
it that
for a
of the
we
may
acts
away
it is
pull or
a
by putting
an
force. of
a
force, it is
.that positive forces act away
unless
take
force
whether
"
line of action
assume
point. Thus,
be
can
point, while
sign,we
it
the
settled
settled and
have
may
whether
to
as
We
preceding points,but
dealing,however,
conventional
from
force.
the
be
to
force be
the
example,
point at
an
act
we
angle
it,
preceded by
force acts if
towards
had
away a
a
from
force of
of 45", it would
6
ELEMENTARY
be
GRAPHIC
written, 6O45lbs., but
pushing It
the
on
point
Pi80+a.
This
will
be
reference
to
Fig. 1.
As
as
pull
a
oa^
in
are
the
it oaca
force, and have
that
seen
force
is
the
To
show
the
foregoing
the
an
on
We
will
we
select we
we
proceed
the
point
We
further
This
only
the
off
mark
that must
we
But
we
"
ideas
in
embodied
the
consider
now
applicationo
direction, we
that
from
a
this to be
length force
the
put
of
on
oa
is
oa
1
line, must
we
in.
equal
=
it
angle,
datum
our
length
that
see
off this
mark
we
shown
as
lbs.,
30 2
to
in.
negative, and
an
arrowhead
one
definite
of
graphics
acting
point o.
diagram one,
the
assuming
notice
consequently towards
of
fix the
can
to
negative
a
o.
scale,and
a
we
the force, "GOgg lbs.,acting
counterclockwise
Before
written
definitions
Fig. 2 (a),and, as for makes an angle of 35^, so
ox.
be
this may
in
measuring
a
o
the
given
are
hence
oa'i80+a.
application of
given point
a
is
produced by either In oa'i80+o. oaa="
on
graphicalrepresentationof
oa
and
oa
and
oa^ is
that
so
"
by
oa
Now
along "
=
along
acts
a,
it
write effect
Po
is concerned,
angle
force
we
same,
the
at
P
line.
straight
general terms
more
6O45 lbs.
"
push, provided
a
were
understood
point o
force
the
the
hence
the
as
as
same
while
readily
far
oa^
positive force acting write
force
same
be written,
more
whether
along
or
the
noting, in passing, that
worth
it is immaterial
if
it would
be
may
STATICS
and
now one
represents
advantage
force
and
becomes
GRAPHIC
ELEMENTARY
8
and
Concurrent
of
if
they do not are applied
but
situated would
be
to
have
by
suitable find
so
of forces
force
Forces.
of
acting on
forces
a
of forces,and
the
as
single force, so
the
can,
forces, and would
forces
several
is known
process
we
acting alone,
the
as
When
"
body
a
these
which,
effect
same
Such
together.
points, so
point,such
common
Resolution
single
the
;
action, if produced,
constructions, combine
one
produce
and
number
a
a
concurrent
various
at
lines of
in
to be
point of application,
body
several
point
common
a
said
are
If, in
"
non-concurrent.
Composition we
have
common
a
the
to
intersect
not
said
are
have
the
that
forces
forces
application,such
but
Forces.
Non-concurrent
several
the
system,
any
STATICS
acting
tion composi-
found,
the
as
resultant Resultant. is that
the
The
"
resultant
of
single force tvhich,acting alone, the
effectas
same
several
of forces
system
any
would
produce
forces acting/
primary
together. When we
of
can,
have
by
suitable
acting that
of
a
of
number
any
when as
we
in
the
single force forces
unison,
single as
several
forces, so
found,
any
number
given
of
of
number to
the
noted, that
produce
force
is knowu
be
whose
as
the
components
the
the
values
effects, effect
same
Such
alone.
of forces,and It
components. resolution is
body
a
combined
acting
resolution
on
find
constructions,
process
however,
acting
capable
of of
a
a
the
should,
force into an
infinite
solutions, but, in general, definiteness
the
solution
by practical considerations
is "
9
INTRODXJCnON
either
the
forces
will be
magnitudes given.
Equilibrant.
equilibrant of
from
resultarU.
the
these
(a)
The
(6)
The
up,
point
of
applied
to
effect.
Fig. 3,
to
of the
lines
and
paring com-
specification
"
applicationis
the
same.
i80-^c^
equal,
^
oa^,
=
(c) The the
is
sense
same,
and
both
positive
being
acting from
away
the
Q^y
Poi^*^-
Fig.
3.
directions
(d) The
diametrically opposed,
are
of
tudes magniare
oa
the find
we
its
system
carefully distinguished
Referring
along
two
drawn
have
neutralizes be
equilibrant must
The
a
when
single force which,
or equilibrates
that system,
we
The
"
that
is
forces
of the
of certain
directions
or
resultant
being
a, while
the
of
angle
that
of
then
is in the
the
equilibrant
the
islSO-hct. The the so
only point
two
that
of difference
being diametrically opposed the
effect
of
the
of the
into
equilibrium.
In
the
general,when
force-effect,produced resultant
bring
so
represents
equilibrantrepresents
by that that
a
system
another,
one
equilibrant is
resultant, and
that
to
directions,
to neutralize
whole have
we
of
system a
forces, the
force-effect, while
single force
given
which
the must
10
ELEMENTARY
be
applied
GRAPHIC
the
to
STATICS
neutralize
to
system
force
that
effect. In
Units*
absolute
unit
the
measurements
of
force
"
which
is
used
problems, The
is
acting
on
acceleration
We
know
of
that,
earth's
if
equal hence
follows
it
acceleration,
feet
a
force
produce
in
produced
is
per
the
on
which,
pound
poundal
acting
pound.
force
1
second
the
the
the
at
mately approxiand
second,
unit
produces mass
it
second.
per
of
mass
per if
that,
the
second
acceleration
32
to
would
per
drop
we
the
surface,
foot
1
is
that
as
pound,
1
engineering
force
of
defined
of
mass
a
unit
be
may
In
poundal.
the
however,
poundal
an
the
be
must
32
poundals. It
use
is
this
as
This
parts small
The when
unit
our
value, of
as
force
attractive
be
in
force
a
but
surface, in
ton,
consisting
of
dealing
with
problems
2240
all
the
practical lbs., is
involving
that
we
problems.
slightly
varies
negligible
pound
mass
engineering
however, earth's
the to
of
on
at
different
variation
is
problems. frequently large
used forces.
so
CHAPTER
COMPOSITION
Forces
in
case
shown
be
apparent
in at
attempting
the
same
glance.
a
is
FORCES
Straigrht
Line"
of
method
the
4
No
of
obviously
is
such
algebraic
the
ABC
In
the
should
solution
advantage
solution
graphical
a
resultant
Fig.
OF
RESOLUTION
AND
Actingr
II
The
case.
a
of
sum
by
gained
six
the
tx^ C
"
"
1-
o 4.
Fig.
and
forces,
(P
+
Q
R)
+
(A
or
with
case
have
to
Such
the
first
at
which find
second
have
admits aid
the
of
the
with
Forces" the
deal
is that
of
two
concurrent
the
two
Possibly important
most
to
of
in
of
which
we
forces.
methods
of
Parallelogram
aid
as
greater.
time,
same
resultant
the
with
the
we
problem
a
is the
left, according
or
Concurrent
Two
simplest and,
the
right
to
B+C)
+
of
Resultant
the
either
acts
solution
:
of Forces^
position
and
force
diagrams. First
method,
Method, we
Parallelogram
"
make of
In
solving
use
of
a
Forces.
problem
well-known This
II
the
method
by
theorem, of
solution
this the is
12
GRAPHIC
ELEMENTARY
not
in
yet
there
are
problems
many
readilyapplied,and it
'point he
the
it may
In
sides
their
be worth
Fig. 5
of
in
be very
can
considering
point 0. OB
have
we
00
Then
direction This
off
equal the
to
forces,P
two
along
P and
diagonal
resultant
these
to
in
Q, acting
at
a
two
lines distances
OBCA
scale
and
the
OA scale.
some
join 00.
magnitude
and
resultant.
about
the
proofs have
been
The the
and
Q respectively,to
represents
Newton
probably
the
5.
parallelogram
of the
various
by
direction
represents the
important proposition was
Sir Isaac
and
on
direction.
Mark
Complete
forces acting
two
parallelograniythen
a
Fig.
is
it
while
magnitvde
intersection
and
magnitude
time
practicalproblems,
in which
Forces."//
of
represented
adjacent
through
and
of
little in detail.
a
Parallelogram a
solution
in the
general use
STATICS
year
first enunciated
1687, and
given by
different
following proof, due
best
known.
since
to
by that
maticians. mathe-
Duchayla,
RESOLUTION
Let
AB, and
ACD.
be
and
act
forces
two
direction C
P
force
a
OP
Q
The
be
can
of the
T, acting
and
its
can
to
act
at
to scale.
and
T
at
points
the
now
and
CE
AE.
These
point
of
the
E.
EG
C,
W
acting along P
and
tion applica-
This
and
have
two
of
force
forces
at
we
some
its line
in
application be
of
point
be
to
replaced by
resultant
the
the
Complete
point
any
directions
of
the
along
(Fig. 5a.) line
the
be
now
Acting
assume
A
point of application be
let their
F.
on
act
Q is assumed
and
assumed
E, may
at
the direction
along
ECDF.
replaced by
acting along
we
W
Q, acting in the
and
further
P
force
and
of P
force
Let
action.
C
also
(say T) acting along
forces
to P
W
CD
represented by
resultant
force
and
Assume
parallelograms ACEB
at A
body
a
on
13
FORCES
equal
EF, and
removed
two
forces
CD.
W
to "
Again
to be
some
(say S) acting along the line CF, and by taking point of application as F, we thereby apply all the
force its
forces effect
at
one
Hence
point F
is
without a
point
altering their on
the
combined
line of action
of
14
GRAPHIC
ELEMENTARY
the
resultant.
Therefore
STATICS
direction
is the
AF
of
the
resultant. For
P
we
and
(nxf) general
the
must
system
force
know
the
that
OC, hence
OD
line, and
if
OC
O
is in
will
and
FA
equals DO, The
of
the
line
aid
known
of
of
in
which
two
of cord
be
the
A
spring this
the
Complete
the
the
ant result-
the
point forces
three be
in the
is therefore
equals OC.
FA
a
But
OD. the
magnitude
inclination
the
of
the
hooks is
B
two
are
fixed
attached.
are
of the
hung
a
being
apparatus
and
cord,
and
balances
balances
the
quite simply by
demonstrated
spring
Fig. 6.
in
of
must
represents Q,
same
of
OF
and
equals
and
along straight
acts
since
action
and
its direction.
can
two
connects
point O,
OC
P
and
to the
Q.
Now
figure OFAC
The
magnitude,
shown
OB
therefore
resultant
OF.
the
of
equal Q
OD.
consequently
OC
theorem
the
that
hence
representing
This the
length
or
magnitude
the
join
under
E, it follows
parallelogram,and
direction
and
the
in
along OF,
act
straight line.
same
the
by OD,
equal
must
equilibrium
P, Q and
in
apply
of P and
be
will
represents OC
P
Fig.-5, we
to
resultant
parallelogram ODFA, and
the
effects of P
OC
and
resultant, then
of E
Hence
magnitude
E, represented combined
the
opposite to We
the
consider
Referring back
a
(W+Q),
resultant.
now
resultant.
holds.
diagonal represents
of the
line of action
for
and,
(mxf)
theorem
same
the
case
We
write
may
a
weight
of
set
as
points A
balances, and
weight
up
of
to
length at
the
known
ELEMENTARY
16
We
by drawing
start
P, and
of
GRAPHIC
such
line ah
a
the
direction
h
line
he
parallel and
0
in
the
draw
next
we
Join
aCy
draw
and line
a
a
through R
parallelto
PositioD
of
line
ac
resultant, while the
being
sense
To
show
that
Fig.
6
to
equal
Q.
to
position diagram
we
Force
7.
Diagram.
now
the
represents line OR
indicated this is
the
the
(6)
the
its
of
the
direction,
arrowhead.
actually the
(a) Magnitude.
magnitude
represents
by
from
of view
letteringa
ac.
resultant
the
consider
scale
of the force ; from
sense
Diagram.
This
to
represents
magnitude of P, the with being in accordance
the
the force
parallelto
ah
that
length
a
STATICS
case,
we
will
now
followingthree points
"
Direction,
(c) Sense.
RESOLUTION
Dealing first with
will show
magnitude, we
that
Produce cb to e, making represents the value of R. equal to c6, complete the parallelogram abed and
ac
he
join
bd.
or
as
hence
force he acts
the
equal
are
in
eb from
of ab
of ab and
resultant
and
point 6, it does a as pull from to
e
not
6 to
the
6, since
two
Pl80+a)
(Po="
magnitude
resultant
the
the
now
push along
a
forces
the
Considering
whether
matter c,
the
17
FORCES
OF
eb will be
the
and as
same
be.
In the
that the diagonal previous proof we showed bd equalled the resultant in magnitude and direction, and therefore, if ae is the resultant of ab and 6c,then it must
paralleland equal to bd. Compare the trianglesd"a and bed.
bd
be
eb is
equal
and
parallelto eb,
ba is
equal
and
parallelto ed,
Angle abe is equal to the angle deb. Hence the trianglesare equal in every respect,and is therefore paralleland equal to ac. Therefore
and
represents the
ac
resultant
in
magnitude
direction.
It is not
but
diagram, show
which
We
is from
be noticed
opposite It is
of
know
that way
to
c
the
in the
resultant
force
this direction round
important
to
added
been
this
in
to note
the that
act
diagram,
other this
as
and
rule
ab
to
of at
the
R,
it will
arrowhead forces
force
case
sense
must
of the
the
on
investigating the
that
a
put arrowheads
to
have
they
method
the
force.
advisable
is the and
always
be.
holds
good. Rule.
"
B
In
the
force diagram
the resvltant
always
STATICS
GRAPHIC
ELEMENTARY
18
points the oppositeway round to the other forces^while round. the equilibrantpoints the same way The Triangfle of Forces."// three forces acting on a point be representedin magnitude and direction by the three sides
of in
three forces are The
meaning by
a
these
in order, then
triangle taken
a
equilibrium. will be
of this theorem
reference
to
Her6
Fig. 8.
stood under-
better
three
have
we
S,
forces, P, Q and
acting on a point 0 in equilibrium. To
construct
force
our
diagram
we
begin by selecting of
one
P, and
say
line
a
Fig.
line
finallya
if the
Now, a
of the
line a
ca
line
8.
paralleland forces
three
will coincide
ca
aby for,if they
closing
of the
evidence know
from
being
in
The
line
did
for
not
our
existence
the
of
6
we
to
it;
draw
a
line be
paralleland
equal
to
and
Q,
S.
to
equilibrium,the
end
of
the
the we
end
require
which
resultant, and not
a
would
diagram, a
parallel
from
coincide,
force
ab
equal
with
hypothesis, does
is
such,
an we
exist, the forces
equilibrium.
triangle dbc
directions
in
drawing
and
equal
are
forces,
the
of
the
represents
three
the
forces, P, Q
magnitudes and
S.
and
RElSOLtfTIOIlJ The
taken
phrase
in order
indicating the in sequence
other
is worth
it
which
that
noting
is coincident
follows
round
It is forces must
be
that
their
forces
on
must
equilibrantof
Any one force is the The foregoing theorem of
case
The
a
on
be
point,
a
by
the sides
forces are
in
If
the
known
since
as
other a
the
two.
particular
"
number
any
of forces, and
represented in magnitude
of a polygon
in order, then
taken
polygon does from the starting
the
equilibrium; if
close,then the closing line drawn
not
and
only
is,however,
general theorem,
more
direction
these
equilibrantof
Polygron of Forces."
acting
through O,
pass
equilibrium the force S must form the P and Q, and must also pass through 0.
in
are
that, if three
fact
the
equilibrium,their directions Considering P and Q, we know
concurrent.
resultant
lettering, forces,also
in
body
a
of
order.
notice
to
each
triangle,and
of the
sense
triangle in
the
of the
direction
the
heads arrow-
forces follow
sides
the
with
important act
the
round
the
that
means
of the
sense
Id
FOftCHS
OF
the
and
stopping point represents in magnitude direction the resultant of that system of forces.
to
Consider
the
we
then
force
diagram
equal
to
from
Q,
and
b
P.
we so
is reached
with
The
draw with
in the
a
each line
a
force
next
line of
ef.
at
force P,
the
by drawing
now on
Fig. 9, where a
find the
required to
are
Starting
in
Q, S, T, W, acting
five forces, P, that
shown
case
be
the
point 0,
have ing assum-
resultant. we
line in
we
commence
our
ab
paralleland rotation is Q, and
parallel and several
forces
equal until
to
W
20
ELEMENTARY
Should end
of
a
GRAPHIC
the
end
the
line a6,
figure,and
the
of
/
five
STATICS
line
the
ef
would
we
coincide
then
with
have
forces,P, Q, S, T, W,
the
closed
a
be
would
in
equilibrium. If,however,/
through
O
does
in
not
fall
on
position diagram
our
join af
we
a,
draw
and
line
a
parallelto af. This
line
represents the
now
of action
liue
of
the
Fig. 9.
R,
resultant its
Note, are
taken,
several this
force
as
can
polygons
is the
system of habit
diagram.
is immaterial
It
"
thus when
the
length af represents its magnitude, being found by following the forces
sense
the
round
while
case,
be and
formed
what
order
the
forces
easily proved by drawing out comparing results,but, although
it is
orderliness
in
advisable
in
cultivate
tackling such
will obviate
dealingwith
to
more
much
problems worry
intricate
and
some
; the fusion con-
problems.
RESOLUTION
Resolution
of Forces."
given provide the various
is
solutions in
to
volving in-
forces.
reversed
in the
The
tion applica-
problems dealing Avith
to deal
necessary
reduce
We
cases.
into
two
reduced
to
resolving
have
following: (a) Direction (6) Direction
imposed
problems, in general,to
the
of forces,we
number
fully with
very
restrictions
the
simple geometry. In general, whether
any
problems
concurrent
simply
subject,as
the
all
just
cases
of forces.
hardly
of
part
21
general
two
solving
of
constructions
resolution
It
of
composition
these
FORCES
The
means
a
operations are
of the
OF
are
to
find
one
the
on
exercises
forces four
other
or
this
or
ticular par-
of
the
"
(c)
of
{d) Magnitudes This
force.
one
of the
magnitude
of two
forces.
expressed generally thus : forces acting at a point,then
of
other,
forces.
be
can
number
and
one
of two
Directions
of
magnitude
and
If to
ti
be
the
specify
know must 2n facts about point we It is the forces, e,g.y n magnitudes and n directions. only possible to solve the problem if (2n" 2) facts about the given forces. known are of dealing with such problems Probably the method of will be most by an examination easilyunderstood the
a
forces
all the
Examples 1. A
and
worked
particularcases
few
with
at the
oz,
of
make
to scale
in the
and
dealing
previous
pages.
by
cords, oy
out.
worked
weight which
mentioned
cases
out
500
lbs. is
angles of
hung 50" and
150"
two
respectively,
22
ELEMENTARY
with
the
each
of the
datum
Produce
GRAPHIC
line
the
ob
equal
ba
parallelto
line of
to 2 in.
Find
shown.
as
Scale
cords.
STATICS
of the
action
load
be
b draw
From
lbs.
1 in. =250
tension
the
in
(Fig. 10.) and
mark
parallelto
oz
off and
oy.
SCO
Fig.
Lbs
10.
"
Then
equals
oc
the
2. Two
resistance the
tension
equals
the
tension
in the
in
cord
the
cord, oy and
oz.
oc
=
175
in.
=
1-75x250
=
437-5
lbs.
oa
=
1-32
in.
=
132
=
3300
lbs.
forces to
directions
are
motion
of the
x
250
applied is 400
oa
to
a
point 0, whose
lbs.,acting
applied
forces
be
at
270".
60"
and
If 135'
24
to
ELEMENTARY
Pj,
then
reached the
in
be the
STATICS
GRAPHIC
parallel to Pg, and line
magnitude
of
ef.
Join
pull
the
so
until
on
af represents
a/, and exerted
tackle,
the
by
while
is
Pg
direction,
its
centre-line.
the
a/=2-09in.
2 09x
=
lbs.
60=125
of R=
Direction
derrick
guyed by
dicates in-
R,
represented by
4. A
as
83".
pole of
five
four
of
means
tension
rods,
which,
P, Q, R,
shown
in
known
that
S,
are
It
plan. the
forces
is
is
zontal hori-
exerted
on
top of the pole by
the these and
1|
2, 3, 2 J
are
guys
respectively.
tons
(Fig. 13.) Find
the direction of
magnitude force the
Fig. 12.
fifth
in. =2
Beginning parallelto P, is reached
draw
a
in
line T
horizontal
with and the
P, so
draw
we
on
line
with de.
parallelto
force
exerted
represents its direction.
ea.
by
a
the Join Then the
the
and zontal hori-
exerted
by
Scale
guy.
1
tons.
ab,
line other
ea
fifth
long,
until
S
through
0
forces
and
ea,
1 in.
represents
the
while
T
guy,
ea
l'38
=
in.=l-38
5. The
from
point
0
is the
Fig.
of four the
of
them
tensions
regarding inclined extent
the
in
each
other
at 180", while of
30
lbs.
of
by
be
telegraph pole,
a
20
the
The
positions
other in
lines, P, Q, R, S, It
lbs.
lines, that
the
If O
301".
13.
being two
tons.
radiate.
indicated
are
=
plan
of wire
six lines
which
2=2-76
x
of guy
Direction
25
FORCES
OF
RESOLUTION
one
is in
is of
tension
known, them to
is the
equilibrium,determine
26
ELEMENTARY
the full
particularsof
lbs.
20
=
in.
T
The
y
add
latter
the
is reached
it
of 30
a
this force and
must
force
each
length).
(of indefinite have
we
unknown
ab
yet
to
direction,
u.
close the
a/, equal
radius
line
a
with
on
lbs. of
Fig.
and
draw
we
so
in the line ey
force
a
and
P,
is still unclosed, but
polygon to
1 in.
Scale
lines.
two
before, with
as
long, parallel to P,
until
STATICS
(Fig. 14.)
Beginning, 1
GRAPHIC
to
With
polygon. in.,
1*5
cut
centre
in
ey
the
point/. Then
the
information
ef
lines
two
regarding e/=l-30
the
in.=
6. A
T
=
in
us
the
unknown
two
1-3x20
26i8oolbs. and
barge, stuck
fa give
=
26
required
lines
:
"
lbs.
of a/ =22".
Direction .-.
and
a
canal
W
=
3022olbs.
bank, is
to
be
hauled
RESOLUTION
off
by
of two
means
bank.
barge off, and of
a
lbs.
600
900
are
lbs. the
just pull the capable of exerting
hauling to
the
through
bank
the
Find
relative
ropes
Scale
is stuck.
barge
opposite
lbs. to
respectively.
perpendicular the
the
on
1
to
the
in.=
(Fig. 15.) O
Assume the
point at
the
barge
to be eOO
which
Lbs.
4
W^
is stuck. O
Through
draw
perpendicular
a
Ooj.
The
ance resist-
of the is assumed
barge to act
this
along
line,
therefore
and
we
draw,
parallel to
Oa;,
line ah
in.
a
2*0
long. With
and
radius
the
the
900-lb.
the
of
b
(represent-
ing centre
6
centre
a
1*8 in.
at
of
directions
which
at
1000
winches
and
line drawn
point
the
600
limiting
placed
requires a pull of
It
pulls
winches
27
FORCES
OF
pull
a
pull
Fig. 16.
of
winch) and of
describe
radius
a
the
of
1*2
then
arc,
an
in.
600-lb.
winch)
through
0
with
(representing cut
the
arc
c.
Join
ac
parallelto
and ac
6c, and and
be
draw
respectively.
OW^
and
OWg
n
28
ELEMENTARY
These ropes
lines
STATldS
GRAPHIC
represent
now
the
directions
of the
"
Rope of small winch at 61" Rope of largewinch at 36" /3. the previousquestion,the positions of =
rt.
=
7. If,in winches Ox
at
have
such
were
anglesof been
the
that
30^ and
50"
ropes
were
inclined to
what respectively,
would
minimum
to give a necessary Scale 1 in. = 500 lbs.
Set
the
the
of the winches power pull of 1000 lbs. on the barge?
to Ox; long, parallel through b draw be parallelto Wj, and through a draw dc parallelto Wg. Then ac and be represent the pullsexerted by the winches Wg and Wj respectively. out
ac
=
6c Therefore
afi,20
line
a
=
in.
500=525
l-05 in. =
l-05x
l-57 iD. =
l-57x 500
=
lbs.
785 lbs.
be
capable of exerting pullsof 785 and 525 lbs. respectively. In nearly all our Bow's Notation. problems we kinds of diagrams,viz.,positiondiadeal with two grams and forcediagrams. is drawn In the positiondiagram,which to some space scale,the lines only indicate the directions of the other hand, in the force the forces,while, on to some force scale,the diagram, which is drawn the magnitudes of the forcesactingat lines represent the corresponding pointsin the positiondiagram. In passingthus from one diagram to the other,it winches
must
"
is essential common
to
that
we
both, yet
some
method
distinct
in each.
have
of
The
lettering method
RESOLUTION which
is
known
probably
OF
letteringis extremely in equilibrium, as in various
but
it is not
problems
acting Instead
S, T,
we
of
the
roof
be
point
naming a
the
Bow*s
use
"
0
the
with
in
an
forces in
the
girder,
solution
the
of
method
being on
we
of
ing preced-
explaining
actual
case.
forces, P, Q, S and
forces, as
capital letter
braced
it in
consider
with
forces
or
of
method
the
truss
four
the
(sometimes
dealing of
best to
O
in
dealt
the
of
case
the
put
to
29
This
case
have
we
would
the on
useful
a
Possibly
notation
Consider
as
is
notation.
advisable
such
pages. the
of
members
best
the
Henrici*s)
as
FORCES
T,
in
equilibrium.
have
done, P, Q,
either
side
of the
30
ELEMENTARTf
line of
action
to the
of the
of the
T
between
the
forces
to indicate
the
Q becomes
Passing
the
a
line
following point this the
line.
so
is
indicated
BC,
that
in
used
The
are
indicated
polygon
examination
in the
of
by
the
is finished
Fig.
17
force
begin by
line
the in
will
the serve
the
regarding
ab,
the
letteringa forces
and
sense
to
6
/
cated indi-
are
force diagram
our
corresponding in
and
AB,
figuring it
of
direction
position diagram
our
wish
the
we
force
the
represented by the
and
on.
carefully noted
are
P we
as
the
17.
parallel to be
call
now
of it
so
the
direction
A, between
diagram,
by capital letters,while they
we
and
force
italics
by
Thus
speak
we
force
should
The
force AB
being
ab
the
Suppose
Fig.
drawing
shown,
space
on.
P,
the
to
on
P so
force
the
as
amounts
between
spaces
clockwise.
and
B, and
space
do, what
we
the
letter
lettering being
space
AB,
force, or
the
thing, we
same
of action
lines
Q
of
StATlCS
GRAMIC
usual to
italics. way,
and
convince
an
the
ELEMENTARY
32
of
the
The
horse
per
of
140
ton
if
7.
lbs.
steel
A
south,
of
angle with
a
is
34"
ft. with
taking
the
north of
long.
and
intensity
the
30
lbs.
the
pull
in What
load.
the east
equal
the
guys, to
40
ft.
lbs.
per
slope
at
projected ing assum-
be
the
north-easterly sq.
an
blows
guy,
would
a
attached
of
north
with
running
wind
north
in.
30
are
and
sq.
a
motion
and
ropes
ground
per
bank.
tons.
ropes
A
the
exerts
high
The
bank
to
wire
ground.
the
all
four
west. from
25
ft.
20
the
horse
resistance
weighs
by
of
edge The
the
is
and
of
force
it
ft.
from
ft.
34 the
barge
up
Determine
area.
from
guyed
east
10
strap
a
ft.
Determine
chimney It
north,
64
loaded
the
diameter.
wind
is
5
STATICS
is
barge
is
tow-rope,
pull
in
The
tow-rope.
a
while
to
GRAPHIC
ft.
?
pull
CHAPTER
III
PRACTICAL
Having
discussed
now
solution
the
Graphic the
of
Loaded
held
in
tie-rods this
FP,
case
we
L=the the
=
W
We
of
HP
in
cut
FP
on
the
by
three
W, at
c
of
centre
the
the the
ft.
in
ft.
in
lbs.
in
this
W
in We
the have
33
it in
and
that
act
Bisect to
is acted
equilibrium,
tie-rods seen
to
vertical
a
platform
the
keep
tension
raise
formly uni-
taken
platform.
K
Now
O.
be
be
to
case
can
the
through
which
hinge.
lbs.
of
area
and
point
forces
In
platform.
the
H,
of two
means
platform
LxBxti?
=
hence
K
at
carried.
and
in
reaction
load
distributed,
point
formly uni-
a
hinged
is
platform
ft. in
load
the
load
sq.
the
the
through
is illustrated
of
the
assumed
have
simple
few
a
let
breadth
W
consider
to
practice.
18
end
either
per
Then
to
position by
of the
total
=
in
which
HP,
length
w^loB,d
problems
in
Fig.
horizontal
suppose
B
In
"
at
general proceed
with
met
one
in
principles
platform its
involved
now
these
Platform. loaded
and
will
commonly
principles
simpler
we
of
application
the
the
Statics,
problems
PROBLEMS
R, when
viz. the we
^
have in
acted
body
a
these
tension also
T
in
meet
through
pass
O,
O
get
we
l^his
completes
simple
force
gram dia-
the
determine
scale, a line
the
forces
tie-rods
in the
to
W
The
at the
triangle
we
"
supported over
Determine the
G
hinge.
at A a
the
by
a
pulley
"
BW
A
hinge D.
pull in
Produce
until it cuts
each
Frame.
Triangular
passes
in
Tension
the
At the
tie-rod
=
scale
can
ac =
-^
B
at a
by
load and
rope
line of
in O ; draw
C
action a
abc off
lbs.
-^
triangular frame and
and
hinge. T
Note.
the
b draw
; from
parallelto R,
which
and
represent
to
T.
from
Set
down,
be
diagram
the
forces.
load
force
of
required ab
gives the
is to
magnitude
the
parallel to
it
matter
and
ac
of
line
which
obtain
draw
to
and
H
the
now
from
a
line
positiondiagram,
the
from
must
of the reaction,
action
a
the
and
point. By drawing a through pass
this
pass
reaction
hinge
the
hence
must
W
load
The
point.
common
a
forces
three
it
keep
forces, which
three
by
on
equilibrium, then
through
STATICS
GRAPHIC
ELEMENTARY
84
a
W the
ABC
rope
is
which
is attached. reaction
of the
line to pass
rope
at at
through
PRACTICAL A
and
W,
O.
Produce
scale.
to
Oa
the
reaction
Oc
gives
in the
mark
ba
85
oflf06
to
parallelto
represent be
00
and
as
shown
Then scale
to
of
magnitude
the
and
b draw
OA.
measured
gives
OB
From
parallel to
PROBLEMS
at
A, while
the
tension
rope.
Shear shear
Legrs.
The
"
shown
legs,
in
ing Fig. 20, as used for liftduces heavy loads, introtwo one or points of
The
interest
rangement ar-
consists
struts,
two
the
member
by
AC.
In
make the
ab
down
to
the
triangle of
The
gives
struts.
This
latter
between
the
how
this
this force first obtain the
arrow
W
and
line
ac
the
thrust
struts, and
is sustained.
be acts
with
H.
perpendicular; with
two
to
foot B
the
a
order
the in of
swing
the
two
centre-line
determin to
see
struts,
we
how must
direction
of
strut, raise
a
the the
Set
the back-
by to
now
the
triangle
pull in
along In
and
struts.
sustained
looking
B, the centre
the
we
determine
AC,
complete
respect
elevation
From
the
have
thrust
an
tie
acts
we
problem to
the
gives
thrust
the
forces
the
represent
be
tie,while
part
pull in sustained by
of
of forces abc.
of
first
is
which
back-tie,
a
the
magnitude
thrust
and
CB,
of
use
Fig. 19.
shown
as
by
of
round
the
strut
ELEMENTARY
36
BO
until F
point half
the
the
ground
spread E
along LG
LK.
and
seen
in the
acts
along
LK.
From
of the
feet
direction
of
set
off
LM
draw
MN
Then
LP
LK
LN
either
side
on
in GK
by
Join
in L.
F
elevation
LG
and
From
M
in
be.
as
force be
The
forces to
; project
20.
parallel to GL, and
out
H.
equal
Fig.
any
true
arrow
is resisted
Select
from
is the the
in E.
struts
vertical
and
L
set
of the
GLK
Then
LF
line and
the
cut
to
STATICS
perpendicular
it cuts on
the
GRAPHIC
MP
and the
represent
parallel to
KL.
in
and
thrusts
LG
respectively. Tripod.
liftingor
simple arrangement, either in Fig. 21. sustaining loads, is shown
arrangement
in
connected
their
hung. way
at
Draw
that
struts.
for
Another
"
OA
The
the
this
consists
case
top ends, from elevation
shows
struts,
the
of the true
being
all
of which
the
of
load
is
in
such
a
one
same
struts,
the
tripod
length of
three
The
of the
length,
^RACI'ICAL make
equal angles
hence
each
of the
third
with
ground
sustains
one
load
a
Mark
load.
total
37
ttlOBLEJitS and
and
centre*line
proportional to off
on
the
one-
line
centre
W a
length
Oa
OA
in 6.
of the
legs.
cut
Simple
equal
to
Then
06
Crane
a
in which a
tackle
point
required
is
BC
in
the
jib
in
the
tie AC Set
parallel
to
be
BC,
and
jib, while
the
pull in
a
(ic
Lift"
The
be
from
a
AC.
to
thrust
in
gives
the
with
Fig. of
the
load,
passes
over
back
another
pulley at
represent W
Single
23
running to
present re-
the tie-rod.
modification
which
to
draw
the
Simple Crane Chain
pull tion). nota-
ab b
It
thrust
(Bow's
gives
the
the
parallel
etc
Then
and
from
by
jib.
the
down
W, draw
from
of the
to find
in each
of crane,
suspended
outmost
thrust
shows
is lifted
load
the
the
pended Sus-
Fig.22
simple type
very
represents
with
Load."
project ab horizontallyto
;
-^
in
; from
case,
pulley
parallelto the
in
crane
this a
Fig.
21.
shows
the
top
of
b draw
at
the
previous
is lifted the
end
by of
tion. queschain
a
the
tie-rod and
passing
the
Set down
be
mast.
parallelto BC.
jib, over
ab
We
38
ELEMENTARY
have
the
pull in
the
tie-rod
CD
Concerning these followingfacts the pull "
W, its direction from
away
force in the CD.
We
having
a
a
a
forces
two
in
pull in
the
parallelto
the
know
has
the
chain
the
we
chain
only know
therefore
from
the
jib-end,namely,
tude, magni-
a
tie-rod, and
it
jib-end; while, regarding the
the
tie-rod, we
can
by drawing
is
the
and
DA.
acts
STATICS
forces acting at
two
now
GRAPHIC
continue
line ad
magnitude equal
that
The
the
along
diagram
force
our
parallelto
to W.
it acts
chain
force
and
diagram
be
d a line completed by drawing from parallelto DC cutting he in the point c. The student, in solving this problem, should use the same configuration and load as in the previous example, and note that the thrust in the jib is the can
now
in each
same on
the
case,
tie-rod
Simple
Crane
while
is reduced
with
in
the
second
case
the
pull
by W. Double
Chain
Lift
"
The
out-
40
ELEMENTARY
separately,or jib-pointdue pulls in the
we
find
can
the
to
STATICS
the
db "be
first set down
jib-pointcaused
by
direction
and
to
represent
the two
the
of
the
the
pulls
It will
falls.
rope
at
force separately,
each
Taking
ropes.
force
resultant
magnitude
various
the we
at
GRAPHIC
W
readily be draw
cd
parallelto CD,
point d, since in CD.
stress
and
ab=bc=".
that
seen
do
we
therefore
but
cannot,
we
know
not
know
of
pull
from
draw
a
the
line
a
ae
c
as
we
now
yet, fix
the
of
the
magnitude
the
We, however,
direction
the
From
both in
the
magnitude
and
AE,
parallelto
AE
we
can
and
of
W
magnitude equal rope). and the
so
jib
From
e
we
complete and
diagram.
to
"
tie-rod
force can
ed
diagram.
then
tension
constant
finallydraw
can
the
(the
be
in
the
parallelto ED, The
scaled
stresses
ofi* from
in
the
When the
the
magnitude
in the the
method
second
three
of the
is
adopted
point
of
pulls acting
jib. Complete
the
OM
that
parallelogram, remembering
first find
we
of the
(R)
resultant
at the
ropes
41
PROBLEMS
PRACTICAL
W
=
and
W ON
=
and
"
find the
R.
resultant
db
down
Set
=
,
R,
and
triangleof diagrams it will
complete the
two
Fig.
the
result is obtained
same
be
triangleabc on
method, with
a
the
traced
force
on
joining
be
found
in each
By
paring com-
exactly
that
and
paper
obtained
that the
If this force
case.
tracing
the
abc.
2B.
diagram
it will be found line
forces
the
by
superimposed previous
the
line oft will
points
c
and
e,
coincide
as
shown
dotted.
Botatingr Crane. crane
which
capable
of
"
is mounted
Fig. 26 on
shows a
rotating through
central a
a
simple type pivot
complete
at
0,
circle.
of
and
In
lifting the load equilibrium when weight W^ of to apply a balance is necessary O of Wi about magnitude that the moment
order
W,
maintain
to
it
such
STATICS
GRAPHIC
ELEMENTARY
42
a
The
O.
about of W just neutralize the moment of this problem should present no difficulty solution point in the following order" if the joints be taken
will
of
26.
Fig.
Notice
that
gives
m
the
DE.
member
lower
of
end
outer
of mast,
jib,head
of the
magnitude
balance
weight W^. Warehouse crane
from
the
fitted
as
point
a
CD,
and
fitted
extremity. force both
a
This on
vertical
shows
at
with
the
This
a
upper the
and
lower
crane
simple is
house ware-
extremity
bearing the
horizontal
exerts
lower
force
at
hung
capable
angle,being
simple bearing
post, while a
a
lifting tackle
a
considerable
a
pivot bearing
with
jib.
of the
swinging through on
Fig. 27
Crane."
mounted
of the the
only
post
upper a
pivot on
of
zontal horiexerts
its lower
PRACTICAL In
extremity. the that
for
solving of
magnitude
equilibrium
structure
crane
PROBLEMS
point; Rj
and
the
the
intersect
Fig.
reaction,
lower
the
Knowing W,
we
can
triangle of will
be
also
must
find
forces acb.
easily understood force
two
pass at
diagram.
mine first deter-
we
We
reactions.
forces
acting
through 0, and
a
know on
the
common
hence
R2,
the
27.
pass
directions
three
easily
problem
three
all
must
W
this
43
through and
this
point.
magnitude of R^ and Rg by drawing the The solution of this problem from a pleted study of the comthe
Elementary
44
GftAPiiic
sfATtcs
Examples. 1. A
draw-bridge,
supported
in
shown
Fig.
and
in
the
and
chains
bridge
is
A
2.
above
from
outer
end.
pull in
the
and
the
hinges, the taking
comer
in.
ft. 6
3
its
seating.
spread the
of
line
and the
boiler
and
A
ft.
of 4
load to
wall
tons
point
a
long,
the
to
reaction
the
at
3
is
ft.
hinge
ft. wide, is carried
6
the
at
bottom
vertical
load.
Determine
the
reactions
legs is legs
feet
makes the
tie
of
supported
is
is attached
the
one
all the
The
the
struts
load
rope.
set of shear
4. A
the
the
at
on
right-hand
The
hinges
magnitudes
hinges
if the
are
and
gate
lbs.
200
weighs
when
10
end
outer
hinge.
Find
lower
the
beam
a
tackle, attached
a
apart.
of
directions
in
of
the
gate, 4 ft. high
3. A two
The
end.
wire-rope,which
a
the
of
each
distributed
of
consists
crane
point 8 ft. lifted by means at
chains
in
hinge
the
at
manner
the
tension
uniformly
a
the
between
the
reaction
at its inner
steel
a
Find
in
sq. ft.
small
hinged by
the
carrying
lbs. per
120
is 56".
angle
ft. wide, is
20
position
The
18.
and
long
horizontal
a
beam
the
ft.
30
weighs
the 16
each
ft. 6 in.
angle
an
back
and
28
are
used
tie
is 54
thrust
of ft.
to
40
place ft.
a
boiler
on
and
the
long
The
plane containing
70"
with
long.
in each
of
the Find
the
ground the pull
legs
if the
tons.
tripod,consisting of three struts, each 30 ft. long, is used to lift a steam-engine cylinder weighing make struts The 2*4 tons. equal angles with the 5. A
PRACTICAL
and
ground, feet
their
A
6. the
thrust
in
in
(a)
Simple
(6)
With
chain
(c)
With
snatch-block,
case,
barrel
as
lift,
in
as
in
ft.
the
28
tie
of
has
ft.;
and
4
and
the
tons.
22.
Fig.
23.
in
Fig.
as
4
being
Fig.
12
22
Fig.
ft.; jib,
load
a
circle
a
in
10
pull
lifting
on
struts.
shown
Mast,
the
when
jib
lie
the
that
:
Determine
the
in
to
dimensions
ft.
21
thrust
the
45
extremities
similar
crane
following
tie,
lower
Find
diam.
PROBLEMS
from
24,
the
lifting
foot
the
of
the
has
the
mast.
7.
A
revolving dimensions:
following to
of
centre
balance
weight,
various
the
A
8.
27,
is
has
crane
R^
lifting
ft., and and
R2.
the
DE
of bales
=
7
ft.
the
ft.
18
in
load
the
Determine
of
10
also
in
tons.
in
Fig. of
if
members
proportions:
the
stresses
maximum
a
of
above
shown
type
mast
centre
the
a
to
up
stresses
following
the
lifting
of
to
mast
jib,
26,
centre
tabulate
and
crane,
for
of
point
when
Determine
cwts.
12
members
warehouse used
ft. ;
Determine
level.
ground
12
of
ft. ; centre
20
Fig.
ft.;
10
Mast,
load,
in
shown
as
crane,
AE=CD the
reactions
30 the
=
CHAPTER
COMPOSITION
The
forces
not
condition
the
the
case
point
for
necessary
shovM
forces,
non-concurrent
the
satisfied, namely,
shall
we
which
of
application. that
saw
equilibrium in
further
the that
was
with
dealing
condition
funicular
now
several
the
we
close, but, a
been
have
we
in
forces
concurrent
force polygon
far,
forces, but
common
with
dealing
one
a
FORCES
So
"
concurrent
investigate
to
have
In
Polygon.
with
dealing only proceed
NON-CONCURRENT
OF
Funicular
IV
be
must
polygon
also
must
close. Before be
well
The
"
assumed
In
by system
the
term
The
term now
forces
the
As
compression. a
funicular is retained a
Latin
a
funicular
or
be
would
subjected
is well and
polygon
46
in
are
known,
is
a
the
hence
principally
geometrical
in
acting
polygon
compression,
only
the
it
were
in
which
shape
might
polygon."
derivation
cord,** and
cord,
funicular
the
"funicular
its
the
it
condition,
to
the
forces.
cases
of
transmit
has
of
has "
endless
an
latter
term
a
represents
many
links of
funicular
polygon
given
"
funis," meaning
"
link
the
explain
to
word
word
the
investigating
various
the
string general
hardly for
the
cannot use
of
appropriate.
convenience,
significance.
nature
and
48
GRAPHIC
ELEMENTARY
We each
also
know
equal
members
again
that
OA,
00
OB,
find
we
lines
the
and
system
a
forming When
in the
such these
figurepqrs the
point 0
figurein
respectively,and
of radiating lines^
are
known
is known as
It is worth
the
the
as as
in
are
the here this
28.
converted
the
into
a
system
position diagram.
relationship exists
a
existing in
OD
force diagram
closed
a
od
forces
Fig. instance
06, oc and
oa,
the
parallel to
and
STATICS
between
two
grams, dia-
reciprocalfigures.
The
funicular polygon,
and
pole.
noting, however,
that
the
forces
AB,
NON-CONCURRENT
BC, CD and
while
DA
and
of
find
would
position of
that, for
this
would
would
o
may
polygon,
and
vary,
quently conse-
funicular
of
few
a
tion, direc-
and
force
one
number
any out
forces, the figureahcd the
only
drew
we
49
magnitude
links
the
have
if
in
have
can
may
polygons, and we
we
lengths we
fixed
are
hence
the
FORCES
different
cases
particular system
remain
the
both
vary,
while
same,
cular funi-
and
force
of
polygons always closing. A
little
will
thought
hold
will also have
we
and
to draw
under
that
good.
Suppose, for example, forces in equilibrium, shape taken up by any
non-concurrent
wish
we
cord
four
show
action
the
the
out
of
we
would
of the
We
would
polygon.
with
polygon lines
in
funicular
the
the
and
formed
closed
a
line
the
would
we
of
cular funi-
the
radiating find
that
figure,each
action
of
of when
one
of
a
system
applicationof
we possible,
will
Fig. 29, and magnitude P
it is and
and
required
direction,
direction
this construction
S, to
are
the
as
clear
following case.
acting
find
of
forces,and
concurrent
non-
consider
now
forces,P, Q
Three
of
latter make
we
as
of
the
make
This
Fopces."
just described, is the one finding the magnitude and
the resultant
as
parallel to
of Non-concuppent
construction,
to
in
diagram,
on
would
forces.
Resultant
use
draw
then
sides
fell
We
forces.
polygon, selectinga join the angular points
our
polygon
of which
corner
the
force
the
struction con-
converse
force
begin by drawing pole o, to which
out
these
the
their
as
shown
resultant
in
in
50
Draw
out
the
forces
not
be
first the
closed
a
in
represent the magnitude of the Select a pole o, and join oa, 06, oc
resultant
will
Fig.
p, any a
line pr
06, and pr
point
so
in the
ad, and
in the
parallelto on,
until
point
since
polygon abed, and,
force
equilibrium, this polygon will figure,and hence the closing line ad
not
are
STATICS
GRAPHIC
ELEMENTARY
r.
this line
the
;
from
represents
of the draw
p
last line
Through
ody then
from
29.
line of action oa
and
R.
r
sr
pq
parallelto
parallelto
draw
the
force P, draw
line
a
line of
od cuts
parallelto
action
of the
NON-CONCURRENT
resultant, the
being
by following
polygon, although, in unnecessary, Resultant
of
case
of the
the
resultant
of
Parallel
noted
forces a
round
the
proceeding
Fopces."
A
is
particular
the
finding of
parallelforces. AB, BO, CD, DE and EF.
that
force
the
in
polygon,
(It this
80.
straight line,and
a
arrowhead,
of like
Fig.
instance, is
the
application to
system
the forces
be
the
51
is obvious.
sense
is its a
by
this case, such
Like
above
Set down should
the
as
indicated
as
sense,
determined
FORCES
that
the
closing line
a/ represents the magnitude of the resultant.) Select a pole o, and join oa^ ob, oCy od, oe and of,and from then point on the line of action of AB, p, any draw, in the space in
draw,
until
on,
the
of
Produce draw
a
line
A,
B,
space
is reached
np
and
vu
line np
a a
parallelto
line pq, in the
parallelto a/.
;
from
parallelto o", and
line
to intersect
oa
uv,
in the
in r, and
space
through
p so
F. r
52
ELEMENTARY
Then the
line
R
of the
sum
unlike
parallel forces
an
examination
explanation.
Parallel
of
The
of
line
action
of
forces.
of Unlike
from
the
being repriesentedby af
downward
Resultant of
STATICS
represents
resultant,its magnitude
the
"
this
GRAPHIC
be
will
case
easily understood further
much
without
Fig. 31
The
Forces."
only point calling
for
any
par-
"K
Fig.
ticular force
is the
care
AB
is set
is measured measured force
EF
Note
of
out
is measured also
that
the
ofc,but
as as
downvxirds
be, the cd
as
upwards
point /
represents
dowv/wardSy and
the
doum
upwards
a/, which
No
setting
the
forces
in
the
polygon.
Thus,
that
31.
consequently
should difficulty
lines in their
the
proper
be
the
next
and as
next
force
BC
forces
two
de, while
are
the
last
ef.
is below
the
poiut
a,
so
resultant, is measured acts
as
encountered
places if
the
shown in rule
at
R.
drawing adopted
in in
NONCONCURRENT
FORCES be
previous question
the draw
in
space
B
the
If
Moments." effect of
P
on
tendency
to
cause
of P and to the
the
so
in
point O,
about
depends
on
length of
R
the
consider
the
that
the
there
point
things
two
is
0.
the
"
and
"
in
on.
see
we
this, viz., and
oa,
Fig. 32, and
rotation
the
is
a
This
tude magni-
numericallyequal
of P and
product
R, measured
parallel to
examine
we
effect
rotational
line
a
of
use
parallelto oh, aud
line
a
A
apace
made
53
in
suitable
units. The
tendency
tion to rota-
known
is
the
as
of the force P
momerU
^
0
about be
and
O,
in
measured
and
R
this
moment
in
P
if
pounds
inches, then PR
equals
lbs. in. If the
off,along
mark
we
of action
line
length AB, equal a
triangle whose of P
moment
equal
a
AB
suitable
Thus
about
to
P, O
x
00.
be P
0
in
a
OA
equal
to
is
equal the
the
we
x
00, that
is,it is
of P about
moment
of the
get The
^ABxCO.
to P
area
OB,
and
O
triangle AOB,
devised. which
moments,
force
join
and
Hence
be
scale
32.
a
is
area
about
quantities,may The
P,
represented by
be
may if
to
of
Fig.
the
are
represented by
product
would
clochmse
tend
to
direction
of
two
areas.
produce ;
such
a
rotation
is known
as
54
a
GRAPHIC
ELEMENTARY
negative Graphic
Let which
aid
the
it is
tending
the
also
can
of the
be
mxyment
causes
a
force
The
"
cally represented graphipolygon. (Fig. 33.)
be
funicular
given to
Moments.
and
O
the
point
about
rotation.
cause
*
Draw
ah
and
join
chosen inches.
AB,
force
a
AB
O
o,
of
Representation
of
by
positive
rotation.
counterclockwise
moment
A
moment
STATICS
draw
parallel and oa
that
From two
H
and
equal
oh^ the
position
is
preferably Q, any point in lines, QS
and
respectively. Draw
QW
an
of
O
QT
perpendicular
to
in
x
OD.
of
and
oa
line
a
so
of
of action
line
draw and
pole
number
even
the
a
being
o
QT, parallel to
respectively, and through parallelto AB, and cutting QS
oh
Select
to AB.
OD
and
y
ELEMENTARY
56
Moment
Fig. 34 and
of we
we
O,
given
required about
the resultant We
have
of
system
a
to find
is the
what
or,
STATICS In
of Non-parallel Forces."
System
a
are
are
about
GRAPHIC
the
nou-parallelforces, of the system
moment
thing, the
same
moment
of
perform
in
0. distinct
three
solving this problem.
operations
First, we
to
find
must
the
magni-
find
its line
Fig. 34.
tude of
action
the
resultant
of the
and
;
Draw
length
the ae a
pole
being
inches.
pole From
so
and
magnitude join
chosen p,
find
must
we
must
we
polygon abcde, and the
o,
second,
the
moment
of
O.
force
gives
Select o
third,
about
resultant
;
draw
ob,
oa,
that pr
H
is
of oCy an
join the od even
parallel to
The
ae.
resultant. and
oe,
the
number
of
and
pq
oa,
NON-CONOTJRRENT ob ; from
parallelto until the
on,
Through line will
q draw
in the
draw
r
Through
funicular
R
line
line
a
OW
cutting pr produced
in y and
the
resultant
of the
moment
{xy being the =
of
system
forces
lbs., then
n
equal
of be
only
Produce
0
with
the
such
be
moment
line
in
unlike forces
the
case,
about
of
resultant.
R, and
in
Then
x.
the
of
scale
in.
1
will
resultant
Parallel
Forces."
It
method
of
the
parallelforces.
in x, and
produce lU in both in r. Through r
nx
Then
ae.
the
point O it
then
as
to
of
moment
of the
resultant
R
and
are
P
them in
it is
position
a
coincide
R, and
if
that
would
have
of
moments
is
with
two
no
point.
particular case we
that
would
ae
resultant
the
seen
be in such
parallelto
dealing
parallel forces. P
it will be
Fig. 35
the
that A
"
which
be
a
indicate
in y and
through
between treatment
O W
line of action
Couples. one
to
Like
to
OW
cut
study
a
the
produced
of
of like
to cut
quite possiblefor that
of the
this
RxA=a:yxH.
=
From
and
ae,
parallel to
drawn
of
System
parallel to
line
a
about
to
tr cuts
lbs. in.
case
np
directions
be
necessary
in the
solution
draw
a
ir
moment
m,xnxE.
xy
Moment will
the
so
equals xyxB. lbs. in. pounds and H in inches). If
in
measured
polygon
parallelto
line of action
the
draw
O
oc, and
point r.
a
represent
67
parallelto
qs
last liue of the
first line pr
the
FORCES
the
In and be
Fig. the
K
36
let
equal
and
the
two
perpendicular
Adopting previous problems,
the
the we
tance dissame
begin
GRAPHIC
ELEMENTARY
58
by drawing upwards
to
the
to
the
point
join
coincide
will
ob and
Fig.
line np to
parallelto
ob, and It will
with hence
one
now
a, the
force
that
the
parallel to would
it follows
draw
p
that, since
same
our
and
draw
p
is
line pq
a
oc.
the
cides coin-
point c
closed
a
parallel
figure,and
equilibrium is satisfied,but
therefore that
a
parallelto
lines np
the
From
oc).
polygon
of
condition
another, and Hence
noticed
be
pole o,
a
35.
from
;
line qs
finallya
also notice drawn
oa
P, and,
equal, obviously
Select
a.
is also
(which
oa
with
be
then
force
paralleland
are
P,
force
downward
the
first ab
Draw
ahc.
upward
the
represent forces
two c
polygon
represent
downwards since
force
the
STATICS
and
qs, since
line, are never
funicular
they
parallel to meet
if
we are one
produced.
polygon
would
close, and
not
59
FORCES
NON-CONCURRENT the
consequently
is
system
not
in
equilibrium. If
such
motion
of
motion
be
system
a
being
body, obviously
a
place, the
resulting
translation
without
of rotation
one
to
take
will
kind
some
applied
in
direction.
any
Such R
is known
system
a
being
called
the
as
Fig. effect
its
the
on
is made
moment
Total
Total of the
arm
This
couphy the
clockwise.
the
total
=
P(^l+^2).
x
PxR. =
the
product
of
one
force and
the
couple.
while
according
that
see
we
parts. r^ + (P x r^.
(P
moment
product
sense
Considering
of two
=
=
.'.
couple.
distance
36.
given body, up
moment
the
of
arm
couple,the
a
of as
the the the
is
known
direction
couple, and rotation
as
of is is
the
of the
moment
rotation
is known
positive or
as
negative
counterclockwise
or
ELEMENTARY
60
The be
GRAPHIC
of
solution
problems dealing
readily obtained in the
adopted The in its
by
of
in the
couple
a
couples will
with
application of
the
solutions
moment
STATICS
methods
the
preceding examples.
is the
all
about
same
points
plane.
magnitude of its rotational tendency, and two couples are equal if they both produce the same turning effect on a body, but if we have two rotational tendencies couples,whose are equal in magnitude but opposite in sense, the total effect produced is zero, or, in other words, the the other. one couple neutralizes A
if
Hence, effect
of
measured
is
couple
wish
we
opposite in
apply
must
equivalerUcouple, that but
balance
to
couple, we
a
the
by
is
or
neutralize
to
the
system
couple equal
a
the
in
an
moment
sense.
Examples. 1. Draw
a
it clockwise Bisect
regular pentagon of ABODE, beginning A
sides
the
The
forces. tudes
:
AB,
13
on
DE,
18
the
perpendicular
the
apex
2.
P
=
lbs.; and
on
lbs. ;
12
EA,
lbs.
14
CD,
on
mine Deter-
of the resultant, its direction of
distance
forces, P, Q, S, T,
ABOD.
its line of
=
action
PAB=120";
act
at
the
The
401bs.; Q
lines of
BO,
on
and
from
action
point.
Four
square
point.
apex
perpendiculars to represent have the following magni-
lbs. ;
magnitude
the
at the
raise
forces
On
lbs. ;
20
and
Letter
1 in. side.
magnitudes of 30 lbs.; T lbs.; S
60
=
of the
a6q
=
forces
150";
are
such
of
corners
the =
25
that
forces
a
are
lbs.
The
the
angle
b6s=135"; c")T=120".
NON-CONCURRENT
Determine
AD
AD
and
side
a
in.
IJ
of
Forces
long.
RP, SQ
of these
three
State
forces.
a
off to
horizontal
Through
in.
represent forces P
20
=
magnitude
a
the in
tion its inclina-
lbs.; Q
in it mark
line and
right distances
0C=1
A, B, 0, C
D
35
and
lbs.; S
in. and
0B
=
in. and
0D
=
draw
verticals
to
following magnitudes:
the
having
=
OA=J
point O.
a
lbs.; W
lbs.; T=14
28
=
lbs.,all forces acting downwards.
=40
Determine
the
5. Three
and
vertical
body.
a
between
forces
to the
The
Q
and
and
Determine
the
force which
would
the
forces
three
6.
in
upwards
instead and
lbs.
and
P
is 4
Q
ft.,
of the
magnitudes
respectively.
the
relieve
magnitude body
of
a
of
the
of
forces
single
action
of
P, Q, S. the
Question 4,
magnitude 7. A
60
The
position and
Considering
given
S,act downwards
between
S, 3 ft.
its
O.
forces,P, Qand
distance
80, 45
are
point
and
resultant
of the
magnitude
position relative
on
its
P, and
from
left distances
the
to the
IJ in.,and 2J
in
PQ.
4. Draw Mark
of
magnitude
the
lbs.,its perpendicular distance to
lbs. act
4
respectively. Using
polygon, determine
resultant
and
10, 8
QR
and
each
continuously PQRS,
lettered
square,
the directions funicular
it cuts
at which
A,
if necessary.
produced 3. Draw
from
distance
61
clinatio resultant, its in-
of the
magnitude
the
to
FORCES
system
same
but
assuming P,
position of
lever, O A,
3
ft.
the
long,
W
determine
downwards,
of
S and
as
are
to
act
the
now
resultant. is
pivoted
.
at
0.
It
62
ELEMENTARY
carries
at
hoop
rim
108", of
end
the
at
and
210"
forces
the
ABOD
is
and
45
90,
60
diagonals Determine
9.
If
of in
outwards to
cause
what
system
points
the
A
corner
the the
of
lbs.
34
in.
3
B, of
0
to
28",
are
magnitudes respectively. O.
system
about
side.
Forces
of
direction
of
the
along A,
ciding coin-
hoop
tangentially
act
The
the
of
circular
inclinations
and
moment
previous
D
and the
of then the
question of
directions
the
rotation
about
74
a
80, the
respectively.
system
about
the
square.
along
would
93,
outwards
the
S
T,
the
respectively.
square
a
of
whose
moment
act
at
radii
of
80,
the
Q,
it,
to
centre
P,
295"
are
Determine 8.
the
Forces
A.
attached
rigidly
A,
diameter,
with the
end
its
ft.
3
STATICS
GRAPHIC
the
square been
have centre
of
the
the
forces
the
sides
in
the the
square
had
acted
(all tending
same
direction),
moment
of
?
the
ELEMENTARY
64
leaving
a
part ABCD
the
is fixed
which
GRAPHIC
into
same
position which
of the
of
part ABCD
the
wall. load
and, by the addition
keep
from
The
P
cantilever
We
can
carries
able
are
and
also
before
occupied
part
extremity,
parts, we
equilibrium
it
the
its outer
at
certain
in
section.
central
detached
the
single concentrated
STATICS
in
to
the
removal
the
investigate the
now
effects of these
ditional ad-
parts, and, in
doing
will
so,
that
aasume
thecantilever has
with
and
and
dealing
are
we
only
itself
weight,
no
that
P
we
the
load
effects
the
produced thereby. The
of
effect
first which
P,
we
notice, is that tends
we
apply
must
the
prevented by same,
point.
an
must
This
be noticed
and
is
that
the
as
force, whether
In
have
shown,
force and
the
been on
conditions
balancing
accomplished this
tendency,
material
the
keep
to our
would
of
resistance
apply
to
opposite force.
downwards
and, in order
AD, we
equal
ABCD
this
counteract
to
motion
originalbeam, section
order
in
the
bodily down-
move
wards, and,
cause
to
portion
Fig. 37.
it
at
the the this
it will
artificial or
real,
BENDING
with
together
is
moment
load
the
P
R, and
x
66
MOMENT
P, forms
whose
couple whose tendency is
a
rotational
clockwise. This
couple constitutes
We
have
of
that
seen
only by Suppose, now,
couple of equal and
a
ABCD
that effects
the
this
is
produced
and
the
other
distance
AA^,
and
these
two
in the
model
AAi
tie in the
nature
chain
pull
a
in the
is
a
distance
from
r
is p
moment
tendency is
X
r
equal
of
x
strut, and
a
force
The
form
strut
acting
couple
at
a a
whose
rotational
whose
These
at
acting
the
in
a
R, but
on
P is therefore
by
and
the
couples
two
a
the
compressive
AD.
AD
is
The
twofold, for
bending
effect of on
ward up-
x
ing applysection
any P
moment
is neutralized
the
represented by
R, which
pr, and
resistingmoment
shearing force, which
stresses
material, while
applied at
we
harve induced
is neutralized a
which
tensile
shearing resistance force
to P
neutralized
are
,
the
force
we
the
equilibrium. In the original beam, pull,constituting the couple p X f are fibres
AD
of
in
induced
a
increasing
forces
two
another
the
the
Thege
one
push and represented by the
in
the
effects
counterclockwise.
system
a
of
tension, that
or
compression.
or
an
E,
about
lessening
a
chain.
a
be neutralized
rotate
to
by introducing,at DD^, of
with,
oppositetendency.
starts
DD^
form
the
on
to deal
tendency tendency can
distance
push
moment
this rotational
now
have
we
one
bending
AD.
section
and
the
by
the
also
shearing
resistance.
Shearing E
Force.
"
The
shearing forceon any
section
66
GRAPHIC
ELEMENTARY
of
beam
a
is
acting either
equal to
have
in the of
in
then
those
for
the
the
in
would
the
the
shown
in
be
as
in
increase
reason,
length,and
was
material
the
top layers would
forces
S.F." stress
of
the
be
extensible,
nature
length, while,
bottom
final
and
above, the
ease
cantilever
obviously,if
opposite
decrease
regfarding B.M.
that, in the
top layers of
all
of
the section.
leftof
Use
just seen
pull,and
a
algebraic sum
the
right or
Conventions We
to
STATICS
would
layers the
of
shape
Fig. 38 (a),the
lever canti-
being
curve
upioards;
convex
this
ing bend-
the
case
is said
moment
^)
(01)
to
be
positive and
the
bending
moment
drawn
the
C*
(c^
above
datum
Should Fig.
the
upwards^ tivCj and datum
is
diagram to the
tends
the
force
is
(6), that
38
is
said
take
be
negor-
the
below
drawn
then
up
is, concave to
tends
neighbour, as
shearing force, if
to
move
in
upwards
move
right,as
shown
said
be
above
is drawn
section
to
to
section
shearing
diagram hand
moment
the
beam
adjacent
the
bending
regard
the
the
Fig.
beam,
line.
With of
in
shown
shape
line.
the
38.
however, the
of
diagram
is
in
to
the down
datum
any
section
relative in
to
Fig. 38 (c), the
positive^and line, while,
relative
an
to
its
if
right-
Fig. 38 (d),the shearing
force
BENDING
is
said
below
be
to
negative, and
datum
the
of
bending-moment this
the
the
E
and
draw
EO
length
that
EC
of
EC
to
divide
AB
corresponding
line,on
which
AB
D
in
equal
AE
in EC
As
raise
the
well, at of
DC
line
Bisect
AB
in
such
a
and
CD
D, making DB
and
them
of
the
then
be
the
the
intersections
Bisect
parabola.
plete Com-
AE
and
into
them
points 1, 2, 3, 4
so
given and
EC
as
in the
points 1, 2, 3, 4
the the
points
the
AB
to
equal parts, numbering
numbered
in
described.
divide
join
lines.
cross
perpendicular of
the Join
Trace
is to be
on
number
any
shown,
numbers.
division
of
EC.
=
into
as
point C. From perpendiculars to cut
the
the
required depth
the
correspondingly
AB
to
before, let AB
parabola
of
Join to
Through
the
rectangle AEFB,
indicated. line
"
draw
number
same
the
methods
be
described.
required depth
the
the the
the
and
to
with
as
be
might
Fig. 39,
in
tangential to
Method.
Second
known
approximate
is to be
represents
and
required curve
it
perpendicular
Produce
the
dealing
curve
that
AB,
equal parts, numbering
across
the
two
Let
parabola
BD
and
In
curve.
"
which
AD
often
so
Method.
parabola.
is drawn
diagram
Parabola."
a
indicate
stage, to
First
the
diagrams
appears
setting out
67
line.
Construction
parabola
MOMENT
in
lines from AE
as
obtained
the
shown
trace
the
required curve. Note on
the
number
that
the
number the
accuracy of
of either
subdivisions:
greater the
accuracy.
method the
depends
greater the
68
ELEMENTARY
GRAPHIC
Loaded
Symmetrically
problems, where
the
Beams."
loading
Frg.
formly distributed, diagrams once
presents
the maximum
the
STATICS
is
or
bending
beam
many or
uni-
and
S.F,
symmetrical
39.
drawing
little
In
no
of the
B.M.
and, difficulty,
moment
has
been
when
deter-
mined, the diagram and
then
proceed
difficult Case End-
This and
The
words, the B.M.
equals zero. a
line AC
diagram,
and
since the
B.M.
The
rectangle scale. above
The the
Let
us
Free
in this
case
force
at
whose
S.F. is
now
B.M.
B.M.X"
is X
when
a;
the free
at
set
=L,
A,
at
up,
scale ;
bending-moment line AB,
datum
the
positive. is
equal
S.F.
the DG
height
positive and
is
to
W, and
is the is
diagram
represents
W
a
to
consequently drawn
line DE.
datum
that
suppose
S.F. at any
the
above
wall.
the
to
in
or,
x=Oy
suitable
some
is the
sections, hence
perpendicular
then
more
at
B.M.
AB, and
to
it is drawn
DEFG
diagram
WL
triangle ABC
all
the
hence
line
represent
shearing for
same
and
datum
or
The
when
is
zero,
base to
CB.
value
greatest close Again equal to WL.
becomes
Select
join
B.M.
is then
end
If
of the
Load
Concentrated
:
its maximum
B.M.
S.F.
ing apply-
unsymmetrical loading.
has
the
and
of
method
solution
to the
polygon
special
any
problems first,
such
with
investigatethe
I. Cantilever
B.M.
other
a
to
without
Consideringa section of the beam at X, we see is W the bending moment at that section (h"x). is obviously an expression of the first degree, will therefore be representedby a straight line.
"
that
The
of
case
drawn
will deal
funicular
the
be
can
We
construction.
69
MOMENT
BENDING
section, say to cut
in
the
B.M.
be
such
to find
wish
we
X.
From
diagram
X in
we ca
the
B.M.
drop and
a
the
gd. scale
(nxca)
that
1
lbs. ft.,and
if
m.^n
the
lbs. ft., S.F.
scale
70
ELEMENTARY
be
(m
such
that
II.
Case
Load.
"
in.
1
lbs., then
m
=
STATICS
the
S.F.x
=
lbs.
gd)
X
GRAPHIC
In
Cantilever: this
case
Distributed
Uniformly
the
load
is
evenly
distributed
W
WL
Fig. 40.,
along assumed
the
beam, and to
weigh
each
w
lbs.
L
lbs.
foot The
length total
of
load
the W
load
J is
is therefore
Considering,as before, the B.M. at a section X, and dealing with the load to the that the total load see right of the section only, we equal
to
w;
x
This
contains
expression of
is therefore
second
the
squared
a
degree,
The
Select
a
to
line
base
scale, and
to
hence
the
curve
when
x=o,
WL
w
equal
is then
and
quantity
representedby a parabola. above expression is a maximum
will be
and
STATICS
GRAPHIC
ELEMENTARY
72
L^
x
"
AB
= --_
and
set
then, by method
AC
up of
two
equal
describe
Fig. 39,
paraboliccurve, having its apex at B. The shearing force at X equals w (L- x). is of the first degree,and is a maximum
to
the
a;
S.F.max=t^;xL.
therefore
=0,
x=h,
value
when
S.F.
diagram
in which
length
the
and
ca
respectivelyat X, Case and In so
IIL
Loaded this case,
that
each
represents wh
to their
simply a
shown
support
will take
an
the
Our
shown,
as
W
to
scale.
S.F.
and
respectivescales. at
Central
Fig. 42,
when
zero.
B.M.
supported
Concentrated in
or
the
load
equal share
L
the
Ends, Load."
is central
of the load.
B.M.x=B,x^i^-a:) W =
/L
pression ex-
its minimum
equal to triangle FDE,
fd represent
with as
DF
a
measured
Beam
has
is then
is therefore
before,
As
and
It
This
\
2-n2-^)
=^(L-2a:)
;
BENBINO This the
is
expression
maximum
value
centre, while
the
whena;=-,
the
MOMENT
?d
represented by
occurring
minimum value
when
value
then
straight line,
a x
ends
at the
occurs
being
at the i.e.,
o,
=
The
zero.
maxi-
WL value
mum
a
=
The
-".
having triangle,
it is drawn
below is
diagram
equals
negative.
S.F.
at
obviously R^ beam.
its apex
or
Hence
and "
depth
in this of
line, since on
we
over
as
for
pass now
from
half, is
this
for
diagram,
estimating our We
have
S.F. in this half
the
loads
two
S.F.,we
take
must
acting upwards
"
and
their
that
This
the
S.F. is
value
is
equal
to
"
in
algebraicsum.
acting downwards,
W
W -
W=
-
"
.
from
constant
right-hand support, and
+
soon
with, and,
W so
as
S.F. alters,
of the
deal
to
positive.
find that,
right,we
centre, the value
the
is
a
above
is drawn
and (to scale),
"
left to
have
we
is
of the
in this half
is constant
S.F.
our
Passing
the
half
left-hand
the
in
W
datum
;
span
,
rectangle of height the
is'
scale.
section
any
of the
centre
maximum
some
j-
in this case,
lioe,since the B.M.
The
to
"
diagram,
at the
the datum
instance
The
B.M.
the
is therefore
centre
to
the
represented by
a
W
rectangleof depth", St
datum
line.
but
this
time
drawn
belUyw the
J
It
will
from
be
noticed, therefore, that
positive to
a
through
passes
a
a zero
of
point
the maximum
Case
IV.
of
zero
the
negative value, and, value, and
Fig. that
STATICS
GRAPHIC
ELEMENTARY
74
S.F.
S.F. in
so
passes
doing, noting
it is worth
42.
coincides
with
the
supported
at
the
poiot
B.M.
Beam
simply
Ends
Carpying this
in
a
the
across
lb.,
w
Each W
is therefore
reaction
equal
be
may
equal
is
or
half
the
taken
as
lbs.
wxh
to
^^,
to
to
case,
where ,
-"
tt7xL.
=
from
the
loads
the
to
load
at
Rg
whose {"n'~^\
distance
-k-
weight ( "
-
we
have
two
section, viz.,
the
and
X, of
piece
-
of
distant
X
an
at
acting counterclockwise
=
a
that
find
right
""
consisting of
section
any
we
(s* *) from
distance
a
B.M.
the
centre-line,
acting
upward
at
load
previous
equal
each
foot-run
per
total
the
hence
Considering X
load
The
load.
total
the
in
as
R^, are
reactions, B^^ and
the
and,
span,
tributed dis-
uniformly
is
Fig. 43,
in
shown
as
load
The
Load"
Distributed
Uniformly
case,
75
MOMENT
BENDING
the
isw
(
from a:)
total
load
-a:],acting
"
load
downward
a
of
length
clockwise
X.
={^x(i-)}-mh")(f-")}
.{^(l.-2"l)}-{H(l-^")(l-2. =
4a;L '^"2L2 -
-
-1(1.-4.=)
L2+
4a;L
-
4x^
)
16
fiLUMEtfTARY from
It appears is when
The
X
this
i^, hence
at the
its maximum
expression has the
at
centre, the
value
value
zero
B.M.
when
being
then
becomes
the
supports
gram dia-
B.M.
the
expression that parabola. The expression
a
==
STATICS
GHAtHlC
-"
is
a?
o,
=
or
-
zero.
i.e.,
"
"
o
o
The
of the
drawing
B.M,
diagram
should
present
now
difficulty.
no
S.F.
The
forces
two
at
X
is
left
the
acting to
of the
algebraic sum
to the
equal
(or right) of
the
section.
=u)x.
y Tlie and
S.F. is therefore
when
x^o,
The
centre.
a:
+-^, the
values
the
supports.
The
be
readily
=
The
been
of
then
S.F,
was
four
considering and
in view so
the
in
are
practice,the
practicalcases
being
of the
hardly
will
which
merit
of
are
the
term
of
B.M.
the
we
the and
diagrams,
the
quite justifiable
loadings. Examples
exception
or
at
adjoining figure.
arrangement more
diagram
setting out of the
the
the
calctdation
the
adopted
symmetry
nicely arranged
rule
before
occurring
-,
values
constructions of
and
"
at
when
occur
typical'cases
since
minimum
performed
still the
being
straightline, occurring
values
from
the
a
value
construction
"graphical solutions," maximum
this
maximum
understood
solutions
have
S.F.=o,
the
the
representedby
less
rather and
than
the
loadings
in
unsymmetrical.
BENDING
We
will
now
proceed to investigateone
unsymmetrical polygon
in
loading, making
constructing the
Fig.
Unsymmetpically first the
case
77
MOMENT
of
Loaded a
series of concentrated
simple loads
B.M.
use
two
or
of
the
cases
of
funicular
diagram.
43.
Beams." cantilever
Let
us
loaded
AB, BC, CD,
and
consider with
DE,
a ^
ELEMENTARY
78
Set down e
draw
to scale the
of
the
inches.
parallelto and
so
(w
in the
;
parallel to B.M.
the
A
space B
The
and
co
draw
with
an
In
do.
of the line
any
line qr
a
polygon
eo.
bo,
ao,
length
the lines of action
space
pq
parallelto 60, horizontal
the
figure pqrstu
now
sents repre-
diagram.
shearing force
The
projectingalong line
the
its
making
ae,
Join
closing the
on,
line tu
In
shown.
as
from
oft,be, cd, de, and
positiondiagram produce
loads
STATICS
loads
perpendicularto
eo
number
even
GRAPHIC
loads
the
constructed
is
diagram
from
shown
as
by load-
the
ae.
Note,
It is not
"
to the
that
necessary
load-line,but
be
eo
it
drawn
gives a
pendicula perB.M.
neater
diagram. Scales
scale
the
to which
drawn
drawn
been
is H
from
in.
in
ae), then
our
scale
example, I in.
lbs.,and
H
1 in.
10
=
=
=
4
L
ft.,and
that
been which
polar distance of
the
point
lbs. ft.
to
have
the
been
load-scale
drawn is 1 in.
to =
in.,then
(B.M. scale) =
10
o
scale
xnxR
suppose
to
the
further, that the
the
By
"
section.
has
the load-scale
lbs.,and
n
(N,B.
B.M.
1 in.=m
For
that
know
Suppose
cantilever
perpendicular distance
the
mean
is lin,
the
structed, con-
measured
S.F. at any :
so
we
be
follows
as
of
length
unless must
and
is derived
ft.,and
polar distance we
the B.M.
the
is 1 in.=m
has
ordinates
the
of B.M.
scale
scale
ae
which
to determine
in order The
by
diagrams,
worthless
less
or
more
are
The
S.F."
and
B.M.
of
X
60
X
4=
2000
lbs. ft.
a
50
80
GRAPHIC
ELEMENTARY
STATICS
y have,
section,
at that
is pq, and
therefore
moment
of the
puxB.j
pu
resultant
the
parallelto
of the
funicular
the
interceptis
last is tu^ hence
the
The
j"u.
first line
The
loads.
of the
line xy
a
about
system
representing
polygon line
the
this section
force
a
and
is
H
a
distaDce. be obvious
It will
things remaining also
definite
some
have
reduced
been
1 in.
ft.,it
m
=
scale, then
the
in
that
(pu x 12m) ins. lbs.,and consequently
would n
of this force
about
equal
to ^^^
This
may
The
depth
X
n
12m
x
x
H
written
in feet.
but
a
"
Let
Fig. 45, in
n)
diagram
length
lbs.
The
under
of
pu
moment
pux\2m
lbs.
ft.,which
the
section
study
us
which
often
of the
over
x
a
and
this
point,
will
come over-
arise.
the
now
expressed
inches
reasoning with
Beam
have
in
arises
above may
consider we
the result is
is measured
H
supported
Simply
is reduced
"
which difficulty
any
if
scale.
Confusion
careful
will
lbs. ft.
as
of the B.M.
of pu
is therefore
section
x
to
Hence,
diagram
puxl2mxnx"^
or
ft.,the distance
not
Loads.
m
length
full-size
would
reduced
ratio.
our
carefullythat, although
lbs.
as
be
B.M.
the Note
X
(pu
the
lbs. ins.,
xnxH is
is
pu
be
pu
other
Again, each inch represents of the force the magnitude
be
represented by
if L
same
times, and, therefore, the
12m
length
true
the
follows
the
that
so
doubled,
been
before, then
as
doubled,
been
have
if Lhad
that
Concentrated case
as
shown
simply supported
in beam
BENDING
carrying
conceDtrated
lines of
the
a
pole o,
the
majority
which
of
makes
aod
and
of
parallelto o", and
o
of inches.
(In
in
so
the
until
on
closed
for the
space
B,
space
the
a
is
point t
figure pqrst above
point A, a
any
p
draw, in the
q
the
diagram
draw
projecting
is the
beam.
oe
from
across
Considering the S.F. find
we
that
the
load-line
the
Rj
to AB
load-line. AB
between
Passing BC
and
is
Ri acting upwards
on
the
load-line
by
acting downwards. BC
is therefore
diagram The
for
remainder
a
and force The
eb
this
of
and
it is
be
can
Rj
or
ea
right,the S.F. represented by the sum
now
AB ea
nett
to
the
acting downwards, acting upwards S.F.
between
and AB
or
ah and
acting upwards, and hence our S.F. part is a rectangle of height eb. the
diagram requires no
explanation. Concentrated Beam with Overhung The following example is well worth F
beam,
is constant
to
the
on
indicated.
half of the
in the left-hand
S.F. from
as
R^, being also positive,so that height represented by a rectangle whose equal
of
Select
parallelto pty and the lines de and represent the reactions Eg and R^ respectively. The by shearing force diagram is constructed From
ea
from
oa;
pt, then
bending-moment
loads.
From
do.
R^ draw,
line
Join
down
set
best
60, co
ao,
parallelto
reached.
duce Pro-
positionfor o is that approximately an equilateral
line pq qr
CD.
and
the
number
even
the
line of action
the
forces
the
represent
an
cases
triangle.) Join in
is
and
AB, BC
of
cd to
H
that
so
loads
action
lines a", be and
the
81
MOMENT
further
Loads
oareful
"
cou-
GRAPHIC
ELEMENTARY
82
sideratiou, embodyiog, the and
Set
previous cases.
two
dCy select draw
space
A
arises
at
line
a
this
and
point
oa.
to which
as
have
a6, 6c,cd, de, and
have
ea.
the and
Now
point,a, ab,
or
of
represent R^
which
is the
the and
lines
AB,
that
oft,be, cd In
points. is the
the
force
close
the
line
the oa
meeting-point of
fa
and
loads
of
the
Difficulty usually
space
finallyto
notice
the
combination
space
A.
45.
round
we
a
the
parallelto
follow
we
down up
Fig.
If, however,
does,
join
pole o,
a
it
as
STATICS
and the
ab. line
These
polygon,
we
polygon
we
is drawn the
lines
latter
parallelto
to
oa
ea
lines must
line pq
crossed are
oa
in
be
position diagram.
the
is the line
lines should
other will
B.M.,
AB
parallelto
of the It
and
R^
connect
noticed
In
present this
in
of
in
constructing the
S.F.
points
the
sections
in which
of
diagram
to
for
be a
beam
diagram is
Beam: as
shown
adopted beam
the
S.F.
the
following case,
method
that
drawing
The
difficulty. have
we
a
with
when
a
46.
inflection
supported
Simply The
case
no
The
diagram. The points a:, jr, denoting zero indicate and called points of inflectioUy
curvature
that
required.
now
Fig.
change
83
MOMENT
BENDING
a
are
at
these
it is worth
points. noting
coincident,
with
maximum.
Compound in
Fig. 47,
Loading." indicates
constructing
compound
the
loading.
the
B.M.
84
ELEMENTARY
Draw
first the
out
loads
AB,
BC
CD
and
the
at
to
as
now
by
diagrams
combine
these
of
and
span
the and
equal parts, support,
this
beam.
the
Now,
this
at
gives the
us
point
one
The
shearing
loading
are
added
The
first to
form
example
another
employed without loaded
system
any
a
out
should
has
of
loading
be
with
the
each
and
the S.F.
Fig.
loading. from
apparent taken a
in beam
B.M.
From
manner
the
B.M., due
the mark
point
diagram.
for
explanation.
been
"
and
I
AH the
points obtained.
in
compound
beam
similar the
to
line a:y, we
B.M,
combined
shown
detailed
(ef+gh).
of
X
total
to
diagrams
the
as
of
case
in
drawn
The
gh. the
of
sidering Con-
due a
to
new
through
force
c/,and
to
(ef+gh), and
our
on
line xy
section
a
a
left-hand
the
B.M.,
a
cuts
to
treated
are
finallydrawn
curve
equal
kl, equal
ordinates
then
is
form
to
number
a
from
have
we
this ordinate
distance
a
X,
We
shown.
as
through
load, equal
then
point
into
ordinates
loads, equivalent
point kj where off
beam
passes
at
distributed
the
the
first ordinate
ordinate
concentrated to
of
taken
scale.
same
horizontal
a
B.M.
being
diagrams
Draw
raise
the
now
the
formly uni-
the
however,
two
B.M.
the
to
construct
to
gon poly-
bending
due
span,
care,
both
single diagram divide
uvw,
link
maximum
and
loading,
shown
construct
must
the
concentrated
the
by
the
of
centre
for the
shown
as
calculate
distributed
diagram
STATICS
B.M.diagram
Then
pqrst. moment
GRAPHIC
A
of
system
ordinates
are
diagram. 48
illustrates
The
tions construc-
the
diagrams
symmetrically
this
case,
but
of
this
type
any can
MOMENT
BENDING
be
quite readily
in the
employed It
should
load
on
treated
noted
beam
that
The
load
Fig. into
large
a
parts
of
acting should
the
at
work
should
of
number load
their out
are
the
be
is divided
beam
47.
treated of case
funicular
the
equal parts, and
centres
this
on
by
as
gravity. for
these
concentrated The
himself, a
readily accomplished further explanation. which
methods
distributed
uniformly
a
treated
be
can
method.
polygon
stages by the
in
preceding examples.
be
a
85
small loads
student
proceeding
without
any
ELEMENTARY
86
STATICS
GRAPHIC
Examples. 1. Draw describe
horizontal
a a
line AB,
4 ins.
long,and
its vertex
parabola having
it
on
ins. above
2J
AB. 2. A
is 14
cantilever
ft.
long
and
carries
free
end
2
a
its
load
of
Draw
tons.
mine deter-
and
by
ment measure-
B.M.
at
ft., 5
ft.
the 2
points
8 ft. from
and free
the
Check
end.
calculations.
by
3. If
lever canti-
the
in
above
the had
question
ried car-
uniformly
a
of
load
distributed
J
the
grams, S.F. dia-
and
B.M.
at
what per foot,
ton
been
have
would
the maximumB.M.? Fig.
Draw
48.
the
S.F.
by and
the
measurement
9 ft. from
the
B.M.
and
curves
and
checking
free end,
B.M.
S.F.
your
and termine de-
at 3 ft.
results
by
calculation. 4.
A
beam, 30 ft. span,
abutments.
of the
span.
It carries Draw
the
a
is
simply supported
load B.M.
of 3 tons and
S.F.
at the
on
two
centre
diagrams,
and
8S
ELtiMllNTARY
of
ft.
36
It
lbs.
200
weighing
beam,
A
9.
carries
1
left-hand What
is
the
maximum
What
is
the
B.M.
Assuming
10,
addition
in
graphically of and
the
beam
ft.
10
from
the
each the
diagrams. it
does
the where
the
beam.
B.M.
it
is
occur
S.F. the ?
of
160
loads
dead
and
What does
load the
to
Question
in
distributed
uniformly
run,
S.F.
where
of
from
S.F.
and
and
loads, ft
28
span
?
occur
right-hand
?
support
a
B.M., and
and
B.M.
the
a
load
3
to
14
8,
at
covers
distributed
addition
in
Draw
support.
foot,
per
uniformly
a
plfiW5ed
ton,
STAtiCS
lbs.
40
foot-run,
per
weighing
GRAPHtC
at
maximum
8
lbs.
given, the
centre
B.M.
to
carry foot-
per determine of and
length S.F.,
VI
CHAPTER
BEAMS
In
all
far,
the
fixed
the
known
dead
as
however, and
especially
position,
loads, free
are
loads
Such
beam.
the
girders,
crane
of
being
along
move
rolling^
as
are
practice,
instead
to
known
are
in
bridges,
in
loads
cases
many
centrated con-
distributed
Such
beam.
so
either
were
uniformly
or
In
structures,
in
loads
the
loads.
more
such
fixed
of
considered
have
the
points
length
LOADS
we
that
seen
at
along
which
cases
have
we
EOLLING
WITH
or
the live
loads.
Concentrated
Single examine
a
the
of
the
case
few
roll
from
the
B.M.
support,
we
Rg,
to a
Load"
concentrated
beam, shown
as
section
We
will
rolling loads, considering
supported
R^ at
of
cases
single
a
simply
Rolling
X
load
assuming in
Fig.
distant
x
49.
from
now
first
rolling along the
load
to
Considering left-hand
the
have "
RiXL p
.
"
=
"
W(L-a:) _W(L-a:)
^1
"
L
The
maximum
always
occurs
B.M., with
just
under
a
the
89
concentrated
load,
so
dead that
load, for
the
90
ELEMENTARY
given position of at
X,
and
STATICS
GRAPHIC
hence
the we
load
have
the
B.M.
maximum
occurs
"
B.M.x
=
KiXa: W(L-a;) XX
_W(Lic-a:2)
This
expression gives
the
for
B.M.
section
any
as
Fig. 49.
the
load
rolls
degree, the
across,
curve,
and, since
which
shows
it is of the
the
variation
second in B.M.
from
side
one
above
the
to
L, being then,
and
its maximum
values
equal
case,
when
to
when
a?=o
It has
zero.
and
x=-
B.M.Qentre
The
parabola.
a
its minimum
in each
value
be
other, must
has
expression
91
LOADS
ROLLING
WITH
BEAMS
=
T
_WL This
is the
obtained
for
as
horizontal
a
the
dead
treated
in
AB, and
set
which
B.M.
maximum
concentrated
a
supported beam, Draw
of
value
load
the
on
we
simply
a
previous chapter.
down,
at the
of
centre
WL the
span,
struct
B.M. its
parabola, having
a
below
draw
we
positions of of
for
diagram apex
if
perpendicular CD, equal
a
The
curve
and
is,
the
load,
out
the
B.M.
the
load,
on
The
that
account,
successive
that
the
apex
ADB,
curve
diagrams, of
spoken
the
as
'ofB.M,
^
+
\
when
The x=o,
the
left of X
is
obviously
"
degree, shows
straight line.
maximum
for
B.M.
the
often
shearing force just to
first
dotted, and
the
on
all
The
triangle,having
a
find
fall
con-
j-,
vertex.
shown
as
will
we
envelops
equal to +RiOr of the
is
and
"
its
as
diagrams
ADB
envelope curve
a
section
any
triangle will always
the
D
to
This, being an
that
shearing and
the
envelope
force
is then
expression
is
curve
obviously
equal
to
+W;
is a
92
ELEMENTARY a:=L
when
and
join
S.F.
the
line
GRAPHIC
and
EF, GF.
is
equal
E
at
The
set
the
that
the
then
equal
zero.
We
to
the negative the
As in
the
force
EH.
The
from
F
line
EH
from
rolls
B,^
left
the
EFH.
of
the
(or
the
load)
It
will
the
shearing
the
maximum
the
while
force
of
of
This
:r=:L, and
is the
is
is then
line FH,
equal
to
envelope of
is
be
force
shown
any
the
in
force
in
section it
triangle measuring take
must
we
be
the
to
the
by that
whether
S.F.,
shearing by the negative
shown
shearing
obvious at
is
variation
the
the
(or
load)
variation
the
Rg
to
force
positive shearing
shearing
"be
right
its value a
the
can
W^.
-
when
x=o
W,
to
shearing force.
triangle EGF,
a
down
set
load
to
right
when
it
the
to
=
value
equal
way
W
-
zontal hori-
a
envelope of
same
^(^^^)
to
W, and
"
join
is the the
its maximum
now
W, and
-
In
line EG,
a
up
Draw
zero.
shearing force, just
load, is equal
expression has
to
GF
line
positiveshearing force. shown
STATICS
positive
or
egative. It should say
Xj,
that, if
be noted
the
shearing
positive if
W
approaches
from
is
force
consider
we
at
that
section,
any
will
section
approaching from Rg, while, if R^, the shearing force will then
be W be
negative. Distributed
Uniformly case
have
per
which a
we
shall
uniformly
foot-run, and
Rollingr Load."
consider
distributed
of
length
L
is that
in
The which
load, weighing
moving
across
next
a
w
we
lbs.
simply
BEAMS
supported see
that
beam
of
LOADS
ROLLING
WITH
L.
span
ExamiDing
93
Fig. 50,
we
"
B.M.x and
R9
.-.
X
=R2(L-a;) L
=ti7a:
X
"
B.M.x=^(L-x).
Fig. 60.
This
expression,of
the
second
degree, has
its mini-
when
mum
values
case,
equal The
right. the
to
The
zero.
load
B.M.
the
the
at
fully loaded,
B.M.
the
left
from
moves
occurs
is
span
of
magnitude
the
as
maximum
when
span,
L, being then, in each
and
x=o
increases
gradually
STATICS
GRAPHIC
ELEMENTARY
94
of
centre
and
to
is then
WL
equal
; the
to -3-
parabolic
being
shown,
as
curve,
0
the
of
envelope
of
maximum
the
and
beam,
B.M.
hence
supported When
distance
a
obviously equal
for
curve
T"
Now
simply
a
will
travelled
we
the
to
on
S.F. at X
The
is
Rg.
to
XT
is
S.F.,
has
(see lower figure).
B.M.
load.
the
only
a
distributed
consider
load a
of
curve
uniformly
a
for
simply supported
a
B.M.
the
to
the
on
value
is the
obtained
we
envelope
with
come
that
load
to
beam
we
assume
which
the
similar
exactly
This
B.M.
distributed
uniformly
beam
maximum
^^^
"
T
RoXL
W?aX
=
V.
7r=
^
-rr-
2
2
"^"^ p
^^
. "
The of
a
and
greatest words, load
value
the
shows
the
X
beam
will
be
right
up
and
is
=
^rY
increases.
,
envelope
curve
It
equal to
becomes
a
at
S.F.x
a
as
when
S.F.
fills the
"21:
Rg obviously depends
increases
maximum sion
of
value
"
on
the will
to
the
have
its
x, or, in other
maximum
a
length
when section.
the The
negative. Theexpresof
negative
S.F.
to be
96
ELEMENTARY
diagrams, pqra B.M.
scale.
and
In
the
STATICS
GRAPHIC
uvWy
order
be
must
drawn
to obviate
maximum
the
same
culating cal-
necessityof
the
bending
to
in
moment
the
case
Fig. 51.
of the with
rollingload, the graphical advantage,
Set down value Draw
of the
fo
fo equal ut
a
the to
be
applied in
this
line de to represent
rollingload
which
perpendicular H.
Join
parallelto do, and
from
w
w
L, the maximum
x
come
bisector
on
of
wt
the
span.
de, making
From
eo.
draw
might,
case.
can
and
do
construction
u
draw
to parallel
oe.
BEAMS Draw
ROLLING
perpendicular
tx
Using
WITH
ut and
parabola
wt
and
uw
construction
as
having
uvw,
to
97
LOADS
it
bisect
lines, construct
its vertex
at
in
v.
the
v.
i a
nil////.
I..
11
1
"I
tint.
h
""
t"
.
f}}))})n}^
Fig.
Draw
a
new
base
of ordinates, the combined G
52.
line yz^ and
as
diagram
on
this,by
the
tion addi-
previously explained,construct for the dead
and
rollingloads.
98
GRAPHIC
ELEMENTARY
The
B.M.
greatest
which
STATICS
at
occur
can
section,
any
,
is
X,
say
-The
lbs. of
shape the
on
first
then
the
the
direction
and
addiug
By the
the
left.
then
case
lower
diagrams, when
the
the
diagram
load
load.
loads, load,
rolling first
span
ordinates
we
Fig.
in
from it
moves
can
the
one
construct
the
shows
52
diagram
upper moves
when
dead
the
the
for
pend de-
rolling
the
for
diagram. the
Will
other.
corresponding S.F.
of
the
across
in
scale.
B.M.
the
diagram
diagram
diagram
move
combined
required the
to
force
motion
S.F.
the
out
construct
it
of
by
feet.
shearing
direction
draw
assuming
multiplied
gh,
to
=g'AxmxwxH
B.M.x
We
equal
representing left
to
from
right, right
and
to
CHAPTER
ROOF
Framed
TRUSSES"
of
the
roof
and
trusses
external
In of
induced
stresses
loads,
have
DEAD
Structures."
practical application
VII
LOADS
ONLY
with
dealing
Graphics in
the
to
the
more
determination of
members
various
bridge girders by
the
of
application
the
we
consider
to
y////^y////////A what
known
are
framed
as
A
tures, struc-
is
Frame
ing consist-
structure
of bars
a
several
jointed
their
at
by
ends
gether to-
pins, 53.
Fig.
free
in
motion
composing Fig. and
53
it
is
Such
a
frame
shows
an
are
a
frame that
obvious
adapted
readily
their
round
plane
one
of
allow
which
to
carry
arrangement
known
members.
as
of
composed such a
load
is, 99
a
bars
several
The
centres.
members,
four
contrivance W
across
however,
could the
open
space to
be S.
this
100
ELEMENTARY
GRAPHIC
objection,that, should due
to
would
lateral
any
BD
tend
pins
about
to rotate
would
render
for
suitable
this motion,
frame
the
frame, owing
conditions
of Frames.
Types into
used
distinct
three
To these of
means
mation this defor-
some
roofs
in
and
way
and
bridges do
Firm
known
are
a
trtisses.
as
be divided
may
of
of the parts,
arrangement
Frames
classes
(a)
and
all loads.
in this way
"
D
theoreticallyrequired
different
to the
frames
hence
used
AC
under
some
in
and
load.
prevent
joints
under
frames
the practice, fulfil the
and
stable
adopt
must
we
the by stiffening,
making
bottom
its work
therefore
must
we
preventing
their
consequently displace the
frame
the
conditions
not
force, for instance
wind, be applied to it,the members
C, and
In
STATICS
roughly
"
Frames.
(6) Deficient Frames. (c) Redundant Frames.
Firm shown
in
frame
possesses
An
"
example
(a).
Fig. 54
just
Frames.
It
of
will be noticed
suflScient
under appreciable deformation plane of the frame, provided the
be or
beyond
noticed
that
any
shortened
limit
their one
without,
of
to
members
member
may
in
way,
is
such
a
prevent
load
any
in are
It should
safety.
any
that
members
any
stressed
frame
firm
a
the not
also
lengthened
be
affecting the
'
stresses
Such
in the a
breaking
frame
members.
two
is stable
for
all
loads
within
the
load.
Deficient frame
other
Frames.
is shown
in
"
An
example
Fig."4 (6). SuqH
of
a
a
frame
deficient is not
^ v#
^
ROOF
TRUSSES"
DEAD'
^
,
O
'
LO'AfoS ONti'S
lOI
to prevent deformation possessedof sufficient members the applicationof a load. If we refer to our on remarks will readily the funicular on polygon we that there will be, at least,one see system of forces which will keep the members in the of the frame given shape,but should one of these forces be altered, the effect would be such that the frame, as presently outlined by the members, would no longer coincide with the link or funicular polygon, and hence an alteration in shape would occur. Such a frame would
cb)
(OL)
CO
Fig. 54. therefore
not
be
so
as
made
by
the
dotted.
shown
it into
be stable
under
all
loads, but
applicationof Such
an
another
addition
would
it could
member, convert
frame, possessingstabilityunder any system of loading, in the plane of the frame, and a
firm
possessingthe further advantage that any one member yet be lengthenedor shortened without may in any way the stresses in the others. affecting An Redundant Frames. example of this type is frame in Fig. 54 shown (c). A redundant may also
"
possess for
one
or
more
but stability,
members
more
it is stable under
than all
is necessary
loads,although
"
""
"
"
' '
'
162'
*'
"
C
t
"
"
"
E'LEMEi"rTAEY
possessedof the length of
disadvantage,that
this
a
STATICS alteration
any
aflfectsthe stresses
member
one
Such
others.
GRAPHIC
frame
would
therefore
in
in all the
be aflfected by
workmanship, and carelessness in marking oif the result in initial would lengthsof the various members stressingwhen the frame was fitted together. Such frames are sometimes spoken of as self-strained frames. If ri= number of joints in a frame, then a perfect frame should have {2nr 3) members. Although roof and bridge trusses do not always bad
"
the
meet
is found
requirements of a frame, yet it that, in the generadvantageous to assume ality theoretical
of cases,
the
theoretical
conditions
are
satisfied.
Fig.55, for example, the rafters all in one and CE AC are piece,instead of being the tie-rod, while jointed at B and D respectively, of two of being formed instead separate members and FE, is all in one AF length. The joints B, C, D In the truss
shown
in
securelybolted or riveted, but, for exist at these that pin-joints assume we our purpose, and that AB, BC and such parts are all separate points, Such assumptionsadmit of the frame adjustmembers. and
F
would
be
ELEMEllfTARY
104
from
the
material
It
used
covering.
in
Distribution
of
on
In
"
elevation
in
truss,
the
of
weights
minimum
with
general,
joints, and of
the
the
loads
at
considered. shown
as
shown
As
56.
in
are,
the
be
now
the dead
dealing with
magnitude
roof
the
Fig.
piece
a
and
plan
in the
by
principal,carries
or
of the
nature
table
these
truss
will
points
consider
us
each
roof
a
computing
various
Let
A
acting vertically at
as
these
the
on
later.
of Loadtngr.
acting
method
the
depends
roofing materials, together
pitches,is given
taken'
STATICS
horizontal.
of various
loads
GRAPHIC
shaded
area
of
roof
the
P
extending
if the
P, and total
(2L
P)
X
obviously (2L indicate
distributed of
section We
have
x
sq. P
one
be
L
rafter
the
ft.,then
Now
total
if this
roof,
over
the
the
rafter
gets
four
rafter
members,
we
principalis ft.,then
rooting
the
for
the
to
carried
is
convenience,
take
can
be
material
load
weight
be
we
uniformly each
it that of
W.
R^, Rg, R3, R4,
and
equal
an
line,so
centre
principal will
one
w?) lbs.,which,
X
W.
as
by
Assuming
lbs. per
w
carried
supported by
ft.
sq.
the
of each
length
of roof
area
weigh
can
of roof
the total width
that
of
side
either
on
"
share
W each
hence
carries
one
either
assume
on
of "r-
rise
lbs.,which
its centre
along
R^, gives
say
load
through
distributed
uniformly acting
acts
a
of
the
member.
to
reactions
we
gravity This at
1
can
or
is
load, and
2
W
each
equal
.
to
"
;
similarly,the
load
on
Rg gives rise
TRUSSES"
ROOF
LOADS
DEAD
106
ONLY
W to
reactions
2 and
at
3, each
equal
to
and
---,
bo
on
8
It will
right round.
observed
be
Fig.
the
abutments
mediate
can
be Let
only get
points get stated N W
in
two
number
=
total
one
on
joints over
while part, i-rrjy
parts, (2x
of rafter load
the
56.
general form,
more
=
that
) or
"
thus
members
on
.
"
or
parts.
truss.
joints over
abutments
=
-^.
W Load
on
intermediate
This
"
W
Load
inter-
joints=r|^.
106
ELEMENTARY
In not
dealing be
with
that
An
of
the
Wi
roof
any
on
roof
a
itself may
load, and
add
hence
of
it must
truss
it is
very sary neces-
approximating
truss
before
formula
is
the
given
design below
is
to
got
"
feet,
pitch of principalsin feet,
=
approximate weight
=
following
foot of different minimum
in
STATICS
truss
means
some
W,
may
dead
Z=8pan P
The
the
approximate Let
The
loads
that
have
we
weight
oufc.
the
forgotten
considerably to the
GRAPHIC
=
in lbs.
|fP(l+i).
table
gives
the
weight
per
roofing materials, together
pitch at
which
they
may
square
with
the
be laid.
out, following simple example, fully worked lead to a better understanding of the foregoing.
Example. 55, has
a
"
span
A
roof truss, of
the
type shovm
the raftersbeing of 30 /^.,
16
in
Fig,
ft long.
TRUSSES"
R(X)P
DEAD
LOADS
107
ONLY .
pitch of
The
is covered
with
lbs, per
7 0
each
the
principals
|
ft.,and
10
boarding,
in,
and
the
slates
what
Determine
ft.
sq,
is
roof
weighing
load
comes
on
joint.
Our the
first
is to find
above
the
this
itself,and
truss
given
step
of
approximate weight
is
given by
the
formula
"
30\
=
Jx30xl0
=
fx
We
must
material
per
in. thick,
70
weigh
of
weight
roofing
weighs
lbs. per
2*5
lbs. per
sq.
purlins
1'5 lbs.
sq.
ft.,and
of
roofing material
ft.,
sq. ft. Hence
ft.
the total
sq. ft.
Boarding, f slates
lbs.
determine
now
per
30x10x4
900
=
(l+?^
the total
weight
70 + 2-5 + 1-5
equals
W
Now
Total
" .
.
=
load
is one
now
w;x2LxP 11x2x16x10
=
3520
weight one
divided
part
sq.
lbs.
=
by
This
11
=
per
each
Iba
carried
=
truss
=
900
=
4420
up to A
Wi+
+3520 lbs.
the
among
and
W
E,
and
joints,apportioni two
parts
each
B, C
to
D
and
be divided
must
STATICS
GRAPHIC
ELEMENTARY
108
;
other
part=
"
lbs.
=553
-
"
the
words,
eight parts, hence
into
Each
in
or,
load
"
(say)
8
Load
"
Load
"
E
lbs. each.
553
=
perhaps, of
plain rafter
the
which
have
we
their
together at
Fig. 57
in
shown
type
lbs. each.
1106
Roof.
of
Form
Simplest
with
and
B, C, D=
at
.
.
the
at A
.
.
With
"
used
as
to deal.
first
The
scale, the
the
the
three
these
the
a
are
beset
the
stand to with-
suitable
some
then,
side, and
to
problems adopt
joint
at
form
such
some
various
round
go
so
polygon for
each
vention con-
joints, joint in
time, starting
a
the
polygon of
joint.
with
unknown
three
with
of the
is to
direction, each
for each
on,
to
are
on
able
force
dealing
adopted
Starting then once
down,
the treatment
left-hand
the
forces
to set
unclosed
In
forces.
method
clockwise
from
be
rafters.
above, it is advisable
one
the
abutments
of the
realitythe
regarding and
ends
wards joint-loadsacting verticallydownand roof AB, BC CD, in the line abcdy
is in
which
fastened
are
bottom
to
form
three
on
as
operation is
simplest
rafters
The and
exception, lean-to roof,
a
the
spreading by prevented from supporting walls, so designed as thrust
in
is about
top ends,
the lateral
the
at the a
abutment,
inasmuch difficulty,
in either to
left-hand
the
forces, of which
magnitude apex one
as
or
point,
we
is known
we
the
are
reactions
direction. find in
at
there
ing Passare
magnitude
TRUSSES"
ROOF
and
DEAD
direction,while
directions
the
ONLY
LOADS
of
the
109 other
two
known.
are
Going with
point clockwise, find force BC, we
round
this
known
our
and in
starting our
force
next
force
Fig. 57.
line
polygon
the
in order
is CE,
parallelto EB, and to EB
the
draw
yet, the pointe
representing
and
from
member
therefore
(we
be
we
from
is not
c
CE,
we
in
this
draw
now
while
draw, from b
it ; the
the
line
a
third
ce
force
is
6, a line be parallel instance, because,
fixed). Join
ea
and
ed.
as
Then
eb and
the rejireseiit
ec
while and
direction
shows
CD
instead
frame have and
of
of
by
the
the
of roof
no
the
lateral
modified
rafters
is taken
this
on
noticing.Consideringany
that
the one
by
a
the
tie-rod
thereby making
In this case,
components, they
effect of
so
58
58.
abutments,
self-contained.
Fig,
Single Tie rod"
with
Truss
thrust
spectively, re-
reactions.
Fig.
outward
EC
and
EB
represent the magnitude
ed
previous type
the
in
stresses
and
ea
of the
Roof
Simple
STATICS
GRAPHIC
ELEMENTARY
110
the
since the reactions
will be
perpendicular,
loads p^ and of these
p^, ^^ worth
points,we
have
ELEMENTARY
112
GRAPHIC
complicated structures,
adopted whereby and
of the
in any
stress
if the
we
At
the
determine
can
members
be
three
the
be
of
the
nature
the structure,
composing of
must
be
procedure
adopted,
encountered.
point
apex
the
along
special method
some
following method
should diflSculty
no
STATICS
have
we
three
forces
given directions, and
acting
forming
a
simple system in equilibrium. The three forces will force diagram by a trianglea5tZ, be represented in our sides taken
whose
of the
nature
only
the
at
will
forces.
several
force
one
in order
give We
hence
(b)
to
left,or
in the direction
Similarly
Hg.
of
direction
pushing that
were
We
reactions.
each
on
Fig. 59 (a),and the
first
point
at
indicated
also
have
therefore
the
sight it
the
pointed outwards,
as
member
at
BD and
from
and
is
a
(a),we
the
in
are
find the
heads arrow-
as
in
shown
compressive
convergent,
seem
arrow
points at
that
6
right
would
we
6,
to
DA
divergent to
is in
a
from
it acts
the
on
two
stress
be
would
Both
similar
member, hence
DA,
pushing
in
a
the dotted
by
apex,
each
is
order
acts
in
force
the
in
in BD
Hj.
arrow
diagram
from
down
then
force
the
arrowheads
Fig. 59 (6),then At
with
the the
on
they
Should
the
point,
direction, so that
pass
and
d, indicating that
the
lettering a6
we
of
is dovm-
force
our
downward
Fig. 59.
to
in
the
to
sense
that
towards
the ^
the
apex-point, and
/Q^i
clue
a
know
mards
-*
us
one.
shown
in
tension.
that, if the arrowheads had
a
decided
indica-
ROOF
of tension, but
tion
be
DEAD
TRUSSES"
but
itself acts
member If
therefore
then
these
arrowheads
is well
to
of
modification
and
example, the
the to
apex
the
only duty
whose
horizontal The
is
and
order
in
following method, good
as
as
as
any.
60.
This
of
is
that
it to to
truss
of
length be
the a
assist
general,about
and, since the rafters
points, this H
ing indicat-
convergent,
the
stress
horizontal
in this
redundant in
a
king-
member,
supporting
the
tie.
rise is, in
20
and
simple shown in the preceding truss being a light king-rod from
found
showing
is zero,
joints,
two
the member,
system
some
the
centre
It will be
tie-rod. rod
addition
its extremities. on
on
will be
Truss."
the
the
compression.
Fig.
King-rod
heads arrow-
in which
outwards
by Fig. 60, is,perhaps,
Simple
the
expected.
cultivate
tabulating results, indicated
CO
on
is to be
tension, as It
in
it will be
will
the member,
manner
inwards
act
that
joints at
acts
jointsmust
consequently The
member
a
113
matter
acting on
of the
the
on
the
in mind
the forces
indication
an
as
serve
bear
we
indicate
do not
ONLY
in diflSculty
any if
easilyovercome
LOADS
are
construction feet,
one-fifth
unsupported is unsuited
of the
span,
at intermediate
for
spans
ceeding ex-
GRAPHIC
ELEMENTARY
lU
Roof
Swiss
Truss."
above, allowing
from rod to
the is
fg
longer
no
in
BC, CD
the
in
has
(i^.B." AB Now,
since
will
reactions
CD
and
be
the
will
divide
give
the
ad
in
magnitude
the
equal
seen
kingforce
loads
AB,
neglected) in
be
loading
each
Fig.
we
may
the
construct
down
be
equivalent
amount
To
the
centre
in the
stress
an
diagram.
will
It
62.
the
begin by setting
we
abed.
that, if
Fig.
that
but
zero,
force
the
shown
in the
headroom
more
of
modification
further
diagram
stress
diagram line
little
a
building,is
of the
A
STATICS
to
is
the
symmetrical, another,
one
so
61.
e, the
of the
two two
lines total
ae
and
ed
reactions.
the left-hand abutment, and going Considering now have round the point clockwise, we ea up, paralleland EA; then, following this, we equal to the reaction is the one force now have ab down next acting ; the 6 in the force diagram we draw along BF, and from The 6/ parallel to BF, in the position diagram. only remaining force acting at the point is that line ef parallel draw from c a we along FE, and to
and
EF
to
follow
cut
the
6/
in
/.
forces
Take round
now
the
apex-point
clockwise, and
lastly
TRUSSES"
ROOF
DEAD
the
right-hand abutment,
be
experienced
in
ONLY
LOADS
and
difficultyshould
no
completing
115
the
force
diagram
A
Fig. 62.
as
The
shown.
stresses
can
then
be
spans
up
scaled
off
and
tabulated. This rise
is
type
is suitable
usually
about
for
one-fifth
of
to
the
ft.
The
span,
and
20
the
of
rise
the
STATICS
GRAPHIC
ELEMENTARY
116
tie-rod
one-thirtieth
about
of
the
span.
Compound
Swiss
For
Truss."
larger
spans,
the
R.
Fig. 63. outline
in
the
previous truss
Fig. 63, Swiss compound
shown the
of
should
be
the
truss
truss.
apparent from
the
may now
The
be
modified,
being method
known
of
as as
solution
figure. If,however,
the
found
will be
the
that
since
that
point
readily
a
have
three
magnitudes
unknown
be
indeterminate,
is
solution
the
will
It
determined.
be
cannot
e
that
seen
we
R^, it just after the point over arises,due to the fact difficulty
taken
apex-point be.
117
ONLY
LOADS
TRUSSES"DEAD
ROOF
deal
to
with. be got over can by treating the point difficulty R^ and by so doing getting the force triangle
The X
after
makes
this
cde;
possible
it
the
construct
to
force
polygon abfed for the apex-point. It should be noted that, in completing the force diagram, the line c/ forms line,for the points c and / are fixed, a check coincide with and a consequently the line c/ must line through c parallelto CF. Swiss
Compound The
Struts." at their
known
as
that
on
the
case,
this
force
the
is
the
rafters the
right angles to
is sometimes
truss truss.
diagram
difficultyexperienced
solution
Right-angled
support
at
are
account
out
the
but
to
right-angled strut
drawing with
met
added
are
mid-points. They
rafter,and In
struts
with
Truss
possible by
we
in
are
the
first
again
previous
treating
the
point a;,before passing on to the apex-point Another solution,though not strictlygraphical,might easily be
know
be
We
adopted. the
got Let
very T
=
W
the
readily in tension
point h in HE, tension
the
=
=
as
soon
this
and :
we can
"
in HE,
8pan, load
as
following manner
perpendicular distance
y=
2S
of
value
fix the
can
at each
joint.
from
apex
to
HE,
GRAPHIC
ELEMENTARY
118
Taking
about
moments
apex
STATICS
we
have
"
R,xS=(Wx|)+(Txy), y
This
tension
can
now
be
marked
off in
the
force
I
f
Fig. 64.
diagram manner.
in
the line eA, the
point h being fixed
in this
The
of the
addition be used
to
GRAPfllC
ELEMENTARY
120
In
the taken
again Bj
and
^^^^
^^^
represented,in
are
and
The
de.
points
k
in
equal
figure,the and
and
that
in
CD,
the
member
round
going
the
common,
are
check
a
ea
the
that
are
under
joint
forms
KH
and
the lines
diagram, by
only points to be noticed / in the force diagram
and
reactions
the
hence
is
loading
J(AB+BC+CD),
to
force
the
king-rod truss
the
ft.
the
symmetrical,
as
Rg
30
to
up
shown
case
allows
struts
for spans
STATICS
line
the
load
in
force
polygon. Truss
King-rod In
order
of the
to
gain
a
with
Struts
little
more
headroom
floor,the previous type of
modified, and
The
horizontal. followed
from
the
k and
this
type of roof
/
longer for
is used
fit additional
to
centre
is sometimes
truss
inclined,in place of being
diagram, no
are
in the
will
of solution
method
that
usual
ties
the lower
Ties."
Inclined
and
and
be
it should
readily
be
noted
When
points.
common
ft.,it
30
over
spans
suspension rods,
is
shown
as
dotted.
Swiss
Truss
67
shows
Fig.
with
Two
further
a
or
Truss."
Belgian of
modification
of two
addition
truss, by the
Struts
struts
to
Swiss
the
support
the
rafter. In three
equal parts.
settled, and drawn
to
point X
the
tion
the
setting out the cut
truss, the The
height
perpendicular
the
struts
of the rafters.
line are
of
the
drawn The
rafter
is divided
of the
tie-rod
bisector
of
tie-rod to
drawing
the
is then
the
in x;
points
of the force
into
from
rafter this
of trisec-
diagram
TRUSSES"
ROOF
and difficalty,
presents
no
from
diagram.
the
This
DEAD
type
of truss
is
should
and
NO
of this of
are
tie-rod, and vertical.
type, in which
wood,
was
be
ONLY
the
case
a
simple
and
rafters
first introduced
without
any
66.
in such A
121
readily followed
frequently made
Fig.
rise in the
LOADS
by
the
EL
struts
inexpensive
and
struts
Mr
EL
P.
are
roof
made
Holt, C.E.
ELEMENTARY
122
This 20 10
type
to 50
ft.,and
be
can
ft.
GRAPHIC
standard
The the
designed
STATICS
for
spans
pitch
of
tied
principalsare
ranging
the
from
principals is
together by
the
Fig. 67.
purlins,which, being notched
on
English truss
with
three
of
a
substantial
section,are
rafters.
to the
Truss.
wood
"
The
English
struts, and
truss
is used
is
for
a
king-rod
spans
up
to
ROOF
TRUSSES"
LOADS
DEAD
123
ONLY
drawing of the stress diagram will present but, in drawing out the frame diagram, difficulty, The
70 ft. no
the
KL
members
and
WX
O
might
with,
as
stress
no
loads, their sections
Simple
sole
of the
lower
Queen-post
dispensed
68.
by
in them
is induced purpose
be
e
7
Fig.
well
being
to
external
the
support
the
long
tie-rod. Roof.
"Fig.
69
shows
a
type of
truss
X
known
known
being
wood, this forms up
to 35
ft.
superppsed on
a
being
noticed, from
types
of frames,
deficientframe
a
Such
frames.
a
under
would,
be deformed,
and
the
but
In be
cannot
two
portion
wings firm of
loading,
crossbeam
69.
massive
tions propor-
sufficient iron
obtained
side
wooden
tie, is usually of such
the
composed
centre
system
practicethe
in
to aflFord
as
the
unsymmetrical
an
is
diagram
theoreticallyconsidered,
structure,
Fig.
forming
the
for spans
line
the
the structure
the truss, that
in
constructed
of roof
good type
very
It will be
distinct
of two
As
queen-posts.
as
X,
members
queen-post truss, the
the
as
STATICS
GRAPHIC
ELEMENTARY
124
from
mation. rigidityto prevent defortruss, however, this rigidity the
iron
tie-rod,and
hence
of
counterbracing the central portion The be adopted. must simple queen-post truss, as in Fig. 70, shows shown modification of this truss one to adapt it to the requirements of iron construction, means
some
for spans
to
30
ft.
difficultywith
The when
up
we
come
to
indeterminate
consider
the
forces
occurs
apex-point, but
this
ROOF
can difficulty
marked
x
treating the solution
be
got
after
that
point
will be
LOADS
DEAD
TRUSSES"
125
ONLY
by considering the joint load the under AB, or by
over
The
counterclockwise. from
easilyfollowed
the
complete
diagram.
Fig. 70.
Queen-post.
Compound
Figs. 68 a a
little be
study,
truss
to the
the
the
members
comparison
a
that
this truss
The are
opposite order
uprights
ties,while of
of has
English trusSy but, by
following important
readily noted.
the inclined
From
71, it will be noticed
close resemblance
very
will
and
"
things
are
in holds
distinctions
struts, and the
English
good,
and
ELEMENTARY
126
also
inclined
the
slope
from
English
GRAPHIC
the
members
the
the
truss
queen-post
inwards, while
bottom
slope from
truss
in
STATICS
bottom
those
in
the
outwards.
^
71.
Fig. force
The
diagram,
clue to the
ready
of this solution
French
worked
complete
type exist,but
along Roof
the
lines
Truss."
out
alongside,gives
solution. all lend
Many themselves
tions modificato easy
indicated.
Fig. 72
shows
a
very
common
a
ELEMENTARY
128
ances,
the
forces
acting
and
solution
of
know In
(a). We OP
to
thrte diflSculty,
this
magnitude
the
four,
other
methods
tion of solu*
**
us.
that
assume
can
six
the
"*
the is
only
MN
in
stresses
equal. (Thip,however,
are
the
of
only two, while,
overcoming open
know
point,we
their directions.
only
are
STATICS
indeterminate, for, of
is the
on
direction
we
GRAPHIC
and the
when
true
we loading is symmetrical.) By this means the point p, by the aid of simple geometry, further in that half difficultywill be met
fix
can
and
no
of
the
frame. We
(6)
fix the
can
point r, by calculatingthe
tie-rod KR,
in the horizontal
example, by taking
explained in
as
about
moments
considering the equilibrium of (c) We This
make
can
The
most
first two
PQ,
in
shown are
member,
point,we
by
previous and
apex
of the
substitution
truss.
frame.
Barr,
Professor
is
by
method. satisfactory
explanation,but study. As
the
one-half
the
first introduced
method,
far the
of
use
a
stress
methods
do
the
is
Fig.
third
72
omitted, and, XY, have
worthy
(a),the in
two
their
is introduced. 6c
call
not
If
for any
of
parallel to BC,
little further
members,
stead, we
a
now
from
further
OP
and
substitution
a
go c
we
round
the
draw
ex
be drawn parallelto parallel to CX, and xn can now XN, the point n having previously been fixed by going We round the joint at the foot of the strut LM. can now
force
go round
the
point under
polygon being cd, dy^ yx,
CD, the lines forming the and
finallyxc.
We
now
to the
pass
lower
replaced,and before
Vlll
in
usual
undtfr
those be
The
BC
encountered
OP
acting
substitution
of the
CD.
and
until
and
74, are
the
Fig.
73.
Fig.
74.
over
spans The
through in
a
60
are
now
joints are
now
joint
over
roof
truss,
when
this
as
type
FG
under
is
use
tions modifica-
The
shown
1
difficulty
by making
before.
as
adopted
PQ,
further
No
member
French
and
force
the
treating joint marked
way,
is got reached, but the difficulty of the
form
the
at
129
ONLY
1, and
members,
forces
the
the
LOADS
joint marked
polygon Icnxyrh, treated"
t)fiAD
TRUSSES"
ROOF
in
of roof
Figs.
is used
73
for
ft.
student all the
who
has
conscientiously
preceding examples
position to solve
the
above
cases
should
worked now
for himself.
be
Roof.
Mansard
type of truss, the
of
the
made
of
same
from
queen-post truss, this iron, although retaining
modified
wooden
the
of
timber, while
the
Mansard
Fig.
76 shows
members
of
arrangement
which
truss
shows
Fig. 75
name.
constructed
as
the
when
Like
its members
the
roof
"
outline, differs considerablyin the arrangement
same
bears
STATICS
GRAPHIC
ELEMENTARY
130
when
structed con-
of iron. The
difficultyof seemingly
forces
indeterminate
Fig. 75.
will
be
again
AB, but
such
overcoming in
these
to
the
joint
have
now
under
load
the
trouble
no
in
difficulties.
modifications
Figs. 77
at
should
student
the
Other
with
met
80, but
of
the
Mansard
it is left to the
roof
student
are
given
to solve
for himself.
Examples. 1. A
simple
horizontal the
roof truss
tie-rod
abutments.
consists
connecting The
span
the
is 18
of two ends ft. and
rafters which the
and rest
rise 4
a on
ft.
The
ROOF
TRUSSES"
roof
covering
DEAD
is
ONLY
LOADS
equivalent
to
a
dead
load
131
of 660
Pig. 76.
lbs. at the and
the
apex.
pull in
Determine the
tie-rod.
the
thrust
in the
rafters
ELEMENTARY
132
Swiss
2. A The
the
on
storage
slates carried ft.
24
the apex
The
various
compound
on
the
rise to the apex
in
ft.
The
Swiss
4. A
glass. use
a
small
The
square
is 6
workshop
compound
The
rise to the
The
pitch of
the
The
ft.,and
the
and is
span
tie-
lower
78.
The are
pitch of J
ft.
the
in. thick
principalsis and
slates
the
and
Determine
5
tabulate
members.
in the
span
late tabu-
and
Fig. 80.
roofing boards
stresses
abutments.
trusses.
Fig.
rise of 1 ft.
8 lbs. per
weigh the
a
tie-rods
boarding
with
Fig. 79.
has
lower
members.
Fig. 77.
rod
ft.
of 20
span
Determine
lbs.
is roofed
shed
a
the level of the
is 800
in the
for
ft. and
4*5
ins. above
stresses
3. A
is
STATICS
is used
truss
apex
point 9
a
load
The
roof
rise to the
rise to
GRAPHIC
is 30 Swiss
apex
is to be
ft.,and
it has with
truss
is 6*5
covered
ft. and
principalsis
6 ft.
in with been
plate-
decided
to
right-angledstruts. to the
tie-rod
1 ft.
Plate-glassweighs
TRUSSES"
ROOF
5 lbs. per
be taken in the
Belgian The
The the
used
tie-rod has
and
into the
be
can
in
a
shed
roof, the pitch of
before. lower
The
height
tie-rods
rose
the
the
weight
per
compound
7. A a
are
lbs. A
workshop The
trusses. 8 ft.
The
pitch
of
lbs. per
span
is No.
500
sq. ft.
The
the
the
same
is
The
loads
ft.
roof is 40
at
tabulate
the
carried
is
ft. and has
8
other
joints
French-roof
rise to the
rise ft.
the
over
stresses.
on
the a
the
roof
a
horizontal,
tie-rod
lbs.,and
and
G.
level
in
carries
truss
principals being 16
of
as
the
the
stresses
being
lower
is 10
tie-rod
lower the
The
apex
Determine
to
before.
as
ft.
each
ft.,and
14
the
queen-post
rise of the
abutments
material
of 45
span
the
8.
sq. foot
tinguishi dis-
adopted
were
ft. above
2
material
roofing
truss.
altered
was
was
apex
point
a
the
struts.
trusses
Determine
abutments.
members,
1000
to
lbs. per
principalsbeing kept
the the
to
The
members,
question
English
thick, is
IJ
of
various ties and
above
the
of 60 ft.,and
span
the
and
in
pitch
sq. ft.
as
8
apex
The
in.
weight
the
carefullybetween 6. The
taken
the
account
stresses
1
lbs. per
8
engine
an
ins.
Boarding,
weighing
fastenings
Take
Determine
over
can
stresses
rise to the
the
rise of 18
a
ft.
10
slates
carry
sq. ft.
of
the
roofing over
in
ft. and
is 40
span
principals is
purlins
for
glass
the
Determine
sq. ft.
is used
truss
lower
to
give
for
supports
members.
shed.
of
the
lbs. per
1|
as
5. A
ft.
ft.,and
sq.
133
ONLY
LOADS
DEAD
of
18
apex
ins., the
The
roofing
corrugated iron, weighing
purlins
and
bearers
can
be
3*5
taken
GRAPHIC
ELEMENTARY
134
1*5
as
the
per
ft.
sq.
into
Taking
determine
truss,
STATICS
the
the
account
in
stresses
of
weight the
various
members.
for
used
a
roof
roof
of
span
lbs.,
600
of
members
the
ft.
40
Fig.
in
shown
as
Determine
lbs..
1200
various
the
a
each
are
joints
other
truss,
having
abutments
the
in
Mansard
A
9.
The
loads
and
at
the
stresses
is
over
of
each
the
induced
due
truss
77,
to
these
loads. 10.
9, the in
determine
roof each
transferred
the
Assuming the
case
in
stresses
shown
trusses
can
from
loading
same
be
in
taken the
the
Figs. as
diagrams.
50
as
given
ft., and
79,
Question
members
various
78,
in
80.
the
The
of
span
proportions
the
GRAPHIC
ELEMENTARY
136
loads
and
finishingwith
construct
the
the
STATICS
funicular
closing line
sp.
polygon
From
o
pqra^
draw
ody
Fig. 81.
da and
cd
Rg, respectively.
The
parallelto R^
and
5p, then
represent
the
drawing
of
reactions, the
stress
137
ROOFS
will
diagram
present
now
from
readily followed
be
I
the
and difficulty,
no
should
diagram.
ra
Fig. 82.
For the
wider
long
rafter
appearing
spans with as
in
it becomes additional
Fig. 82.
stiffen
necessary
to
struts, one
tion modifica-
138
GRAPHIC
ELEMENTARY
before, the
As in
determining the
out
funicular
the
STATICS
polygon
reactions
R^
and
is made
will diagram, difficulty
stress
drawing
In
Rg.
of
use
experienced
be
jointsunder the loads BO and CD, the forces acting at these points being seemingly indeterminate. The be got over can difficulty by treating the joints at the
Fig. 83.
Fig. 84.
the
in and
following order, viz., R^, AB,
by going the
at
at difficulty
The
Rg.
round
also
can
be
overcome
joint counterclockwise,
time, that
same
horizontal
a
the
BC
x^, CD
BC,
x^,
through
the e,
h
point
since
eh
must
is
noting, fall
on
horizontal
a
member.
Figs. 83 truss.
for
and
The
himself.
84
student The
show
further
modifications
is left to work
finding
of
the
out
of
these
reactions
and
this cases
the
139
ROOFS
of
drawing
the
should
diagrams
stress
present
now
difficulty.
no
Roof
Overhung: shown the
of
type
one
or
pent In
joints.
upper
particularsof
the
Trass"
truss
carrying
this
in
the
resultant
pqrstuv, and intersect
in
Now
truss,
the
which
keep
R, Rj
and
Through
w. as
it in
a
the
w
in
R
draw
whole, is acted
meet
first
must
As
explained funicular gon poly-
first and
the
equilibrium ;
Rg, must
loads.
construct
produce
on
obtain
can
we
is
85.
of the external
Chapter IV., Fig. 30,
85
five loads
Bg, we
reactions, B^ and
Fig.
find
before
case,
Fig.
In
Pent
on
hence a
common
last
lines
to
parallel to af. by three forces, the
three
forces,
point.
The
140
point X
GRAPHIC
ELEMENTARY
and
to
common
y will
give
determine
now
drawing The
R
and the
the
Rg
line of
taken
x^, DE,
Overhungr modification
so
that
in the
of
Rg.
Roof
with
the
preceding example.
line
R^.
R^
and
through We
if difiBculty
the
86.
Pillar."
overhung In
can
Rg by
following order, viz.,AB, BC,
EF, and
of
a
of
action
magnitude
Fig.
CD,
is x^
triangleof forces, afg. diagram will present no
the
stress
jointsbe
STATICS
this
Fig.
roof,
case,
as
the
86
shown
shows in
roof, instead
x^,
a
the of
being supported entirelyat the wall, is further supported so that, in reality,it is only by a front pillar,
141
ROOFS
the The be
of
panel
extreme
will
reactions
be
It will
in the
of
nature
joint under
the
with
the
tension, while
BC,
load
the
in
stress
all the
and
there
the
rafter
member
can
funicular
the
that
the
overhung.
case,
of
aid
is
change
a
members
at
being in
BH
members
rafter
other
is
this
in
the
noticed
be
which
truss
vertical
easily determined
polygon.
the
in
are
Fig. 87.
On
compression. member
the while
AH
all the
members
is in
in
solution
will
from
diagram
the
Island
shows
type The
stations.
presents the
becomes such with
no
a
readily
The
in
followed
Fig. 86.
Roof." of case
roof of
Fig.
a
little
more
case
will
be
loads.
When
87 used
frequently
simple loading,
and difficulties,
diagram.
wind
horizontal
tension.
Station a
from
be
side,
compression,
lower
other
are
under
the
will
acted
be
on
in the
next
as
island
shown,
easily followed
by wind,
complicated, but given
for
the
the
case
solution
of
chapter dealing
ELEMENTARY
142
GRAPHIC
STATICS
Examples. 1. A
Fig.
saw-tooth
The
81.
angles the
FG
is the
30"
pitch of
has
truss
the
is 90"
angle
apex
60" and
and
The
roof
and
the
principalsis
weighing
side
is covered
lbs. per
12
is covered
with
Determine
and
with
the
member
longer
slates
and
glass weighing tabulate
The
the
side
shorter
in
stresses
rafter.
boarding
lbs. per
5
ft.,
is 22
of the
ft.,while
sq.
in
abutment
span
ft.
8
perpendicular bisector
longer
the
The
respectively.
shown
outline
ft.
sq.
various
the
members. 2. Draw
out
is 32
Assuming
shown
that
to
in
The 90". angles being 30", 60", and ft. and the pitch of the principals 10 ft. the same type of covering as in Question
1, determine
tabulate
and
members. and
similar
truss
the
Fig. 82, span
roof
a
Write
the
down
the
roof,
as
in the
stresses
of
value
various
reactions
the
R^
Rg. Draw
3.
out
a
proportions from
the
in the above
as
pitch of
shape
Fig. 84,
in
the
the
roof
ft.
span
of
shown
of
determine
principals10
Question in
determine
members,
and
3
Fig. 84,
Adopting
before.
as
With
the
roof
The
4.
the
the
cases,
Fig. 83, taking
diagram.
of
if the
members,
the
in
shown
determine
in the
ft. and
40
all other
write
stress
the
finallyaltered
was
outline
the
and
is
ing load-
same
ing things remainand
proportions the
down
also
to
the
stresses
value
of the
reactions. 5.
in
An
overhung
Fig. 85,
the
station
amount
of
roof
is
arranged,
overhang being
20
as
shown
ft.
The
CHAPTER
ROOF
TRUSSES
of
Calculation been
subjected which
be
induced
stresses
in
negligible Many
the
a
if
whose and
further
P t;
W ti;
this air
the
surface
Let
After
let
of
the
than
then
deduced
the
wind
however,
by
Let a
of
area
us
the sider con-
flat
surface,
the
stream,
perpendicular the
of
to
the
exerted
pressure
thus "
=
velocity
in
pressure of
air
weight
of air
weight
of
impinging
be
wind.
exerted
on
the
surface
be
air
=
impinge
to
the
can,
assumptions.
stream,
can
=
=
air
is greater
area
direction on
of
stream
a
We
force
for. the
almost
solution
mathematical
a
certain
make
we
by
which
pressure
the
cause
appear
caused
those
impossible.
is
case
expression
an
wind,
and
structure,
practical
obtain
the
to
pressure, to
as
cases,
loads
to
influence
on
some
dead
the
by
comparison
causes
exerts
in
great,
so
less,
or
more
wind
to
all
but
only, are,
due
loads
have
we
structures
on
loads
weather
the
to
far,
So
"
produced
dead
additional
to
may
effects
of
exposed
structures
PRESSURE
Pressure.
the
application
the
WIND
"
Wind
with
dealing
by
IX
on
1
lbs. in
per
ft.
per
delivered
cubic
the
ft. of
surface 144
sq.
ft.,
second, per air the
sq.ft.p. in
air
sec.
in
lbs.,
lbs. is assumed
to
ROOF have
TRUSSES"
WIND
velocitynormal
no
PRESSURE
145
surface.
to the
have, in
We
general "
of momentum
Change
impulse
=
"
W
g In
our
t=
unity ;
we
case,
dealing with
are
therefore
have
we
second, and
one
relationship
this
"
the pressure expressed in words ft. is equal to the change of momentum or
that
on
sq. ft. and
1
the
delivered
air
per
ft. per
v
sq. ft. per
second with
dealing
are
we
velocityof
per
sq.
second, hence
second
will
be
v
ft.
cubic .*.
air
an
Now
area.
lbs. per
in
"
occurring
hence
of air delivered
Weight
per
second
=ti;xv
lbs.
Wlb8.
=
W
Now
change of
momentum
p.
sec.
xv.
= "
9
g
9
in
Putting (
=
the
values
32"2)and converting
ft. per second
into
miles
( 0'08 lbs.)and g velocityof the wind from
of
the per
w
=
hour,
we
"08
Change
of momentum
p.
sec.
=
=
where
velocityin
V=air .-. K
P=0-0053V2
miles
X
get "
V2
X
5280
X
5280
x
3600
X
32-2
"^^eOO 00053V2, per hour.
lbs. per sq. ft.
U6
ELEMENTARY
Thus, with
wind
representing sq. ft. would the
above
at
be
gale,the
Experiments
These P=
by
00032V*
exposed it
show
experiments
lbs. per
found
was
and
that
for
that
of the
much
this
on
the
as
high.
too
what
For
wind.
of
sical Phy-
pressures,
matter
be
area
lattice-work much
was
pressure
structures
practice.
rectangular surfaces
ft.,no
the
in lbs. per
National
the
are
for
that
sq.
force
the
to
that
formula,
in
the
at
show
to
above
the
attained
Stanton
by Dr Laboratory go
hour,
per
lbs.,assuming
8*5
=
be
could
miles
40
pressure
00053x40x40
conditions
obtained
velocityof
a
moderate
a
STATICS
GRAPHIC
P
nature
greater, 000405V2
=
lbs. per. sq. ft. The
effect
important on
off
effect
the
wind,
suction
be
can
of
a
effect
on
the
effective
experiments of
the
wind
ground.
The
relative
to
very
wind.
does
suffers
leeward
which
effect the
of
of the wind.
an
exerts
is found
to
is
structure
Lattice-
innumerable
increased
has
wind
the
suction
length
side
work,
thin, fiat plates
pressures
due
this
to
effect.
slope the
this the
as
it
as
force
direction
in the
presenting
It
the
on
rapidly
increased
to
suction
structure, and
any
fall
of
taken roof
generally the
leeward
force at
the
shape other
materially
greater side, the
on
Forth
of
the
and
the
steeper
be
the
suction
hence
the
greater
side.
windward showed
the
height
above
Bridge surface
buildings
affect
the
will
with
increase
to
that
are
force
and
its
factors
exerted
the
The
effect the
position which
by
the
allowed
for
a
we
make
of
use
obtained,
taken
time
long
hurricane, which hour, per
find
we
the
means
sq.
which
we
exerted
by
miles
90
be
about
the
Tay
to
pressure
if
ft.,and
formula
velocity of
was
a
per
lbs.
41
sq. ft.
Following
efifect of
investigatethe bridges,and, as a B.O.T.
sudden
to
life and
limb
the
structure.
experiment
has
shown
than
40
allowance lbs. per
situations. force
It
stresses
In
Continental
the
wind
but
in
assumed
sq.
this
to
horizontal.
normally
to
angle of
country
the
roof
the In d
dependent
maximum
only
the
the
on
pressure
the
is
assumed
usually
lO'^-lS" to the of
surface, the
affects
roof
truss. that
horizontal,
the
the force
most
of
component
composing
termining
exposed
which
surface
direction e
and
design,however, hardly economical
it is
roof
the
members
an
wind,
that, only in very
ft.,and
practice it at
This
roof
greater
is, however,
in the
acts
a
of
gusts are
In that
for
normal
the
a
high, readily justifies is in an structure exposed
the
stabilityof to make
for
sq. ft.
lbs. per
56
of
designs
seemingly
where
when
so
of
railway tions, investiga-
made
be
should
pressure
situation, subjected more
in all
Bridge
Committee on
pressure Committee's that
allowance
figure, although cases
wind
recommended
wind
itself in
appointed a
of the
result
railway bridges maximum
Trade
of
to
the
after
inquiry
the
disaster,the Board
this
country
pressure
a
wind
the
this
lbs. per
theoretical
the
wind
maximum
in
40
as
calculate
and
The
structures
on
147
PRESSITRE
Pressupe."
Wind
Maximum pressure
WIND
TRUSSES"
ROOF
usual
wind exerted method
is
ELEMEl^TARY
148 is
make
to
follows
P
=
GRAPHIC Hutton*s
of
use
=
=
force
wind,
the
of
normal
to the
wind
Example.
blows
is
as
sq. ft.,on
of the
sq.
ft.,impinges
the
horizontal
surface
a
wind,
of surface, e
cos
-
1.
horizontally,tfis equal
to
the
with wiud, blowing horizontally,
velocity corresponding on
a
to
a
surface
lbs. per
40
inclination
whose
will be the
is 35", what
of
pressure
normal
to
pressure
sq. ft. ?
in lbs. per
P" Sin
sq. ft.,
lbs. per
direction
right angles
at
roof.
the
If the
"
surface
a
P" =P(sin. 0) 1*84
slope or pitch of
a
in
of inclination
angle
the
on
in lbs. per
pressure
Then
When
which
"
inclined tf
formula,
:
to its direction
Pn
STATICS
tf=sin
P
=
36"
(sin 0)1-84 and
0-57
=
^
cos
1.
-
35"
^=cos
cos
=
-82 ;
.".P"=40(0-57)a-84x-82)-i, 40 x(0-57)-5 40x756, =
=
=
It is not
usual
for snow, is not
wind The winds
in
on
likely to
sq. ft.
lbs. per
30
this
the
remain
assumption in
the
make
that
presence
ance allow-
any
the of
load
snow
the
mum maxi-
load.
following tables give and
to
country
the
normal
roofs for different
the
pressures
horizontal
velocityof on
various
variously inclined
pressures.
ROOF
TRUSSES"
Determination the
of
methods dead
treat
can
we
two
the
maximum
variation
As
By
due
we
have can
the
on we
former
In
to
either
of
combine
their
then
method
only get
we
members,
are
enabled
to
it may
be
necessary
the
get
members, to
the
combine
various
various
two
resultants,or
the
the
mining deter-
combined
option
separately,and
the
method,
make
for
while, tion variawhich
allowance,
considerable.
latter
understood,
structure
on
it be the
a
by finding
load
each
load
in
should
loads
loads
latter
the
to Wind."
We
solution.
effects.
the
by
loads,
wind
and
in
stresses
149
PRESSURE
due
of Stress
wind
and
dead
WIND
we
method
will
is
possibly the
consider
this
method
more
easily first and
150
ELEMENTARY
then
proceed
dead
and
The of
this may
Let
L=
wind
due
load
total
=
load
on
will
be
tion determinathe
on
truss,
ft.,
on
up
if N
number
be
the
in lbs.
truss
the
among
load
ft.,
lbs.
joints along
of spaces,
the joint (i.e., the
sq.
one
any
LxpxP"
=
lbs., while
"
wind,
to
W
end
each
in lbs. per
is divided
W
rafter, and
load
in
is the
"
pressure
Then
the
thus
of rafter
normal
=
This
combined
pitch of principalsin ft.,
=
P"
of
cases
acting
pressure
be found
length
p
few
a
considered
be
to
wind
total
the
out
STATICS
loads.
point
and
W
to work
wind
first
GRAPHIC
and
apex on
then
the
abutment)
intermediate
each
2N
joint
lbs.
be
will
-^
finding
In
Case*
First
consequently to
act
We
also
acts
through the the
over
Set
down
the
Select
a
nature
It
distinct
three
that
the
the
centre
of of
line of action abutments
draw
parallelto
poleo,
and
AB
join ao
roof
truss
tached at-
are
by
rigid fastenings, and
of
the
is, however,
parallel to the
assume
a6
of the
abutments
indeterminate. them
ends
^Both
"
the
to
have
we
with.
to deal
cases
reactions
the
is
reactions
admissible
resultant resultant
to
wind
quite
assume
pressure.
wind
pressure
duce Prolength of the rafter. W, and through the joints two
and
and
lines
parallel to
equal ho.
In
to
it.
it,to scale.
the
space A
152
GRAPHIC
ELEMENTARY
W
STATICS
E^ to intersect in 0, and to satisfy the conditions of equilibrium stated above, the line of action of Bg must pass through O as well as P, and Produce
hence
We
and
line of action have
B^
is determined.
determined
now
hence
magnitude,
one
of
it
directions
three
only
remains
fix
to
parallel
a
and
from
and
a
Then
and
and
Bg
Case.
Third
blowing
in
and
of construction case,
have
apply equally
working of
the
wind
to
a
employed
constructions the
out
roof, due loads
to
should
stresses a
dead
be
in the
on
load
treated
in
the and as
are
method
previous will
student if he
solution
ings fix-
previous
the
the
this, and the
difficultywith
no
carefully the In
well
the
truss
The
reasoning,as given
wind
the
89. case.
In
from
of the as
spectively. re-
"
the
type
left, while
Fig.
cb
magnitudes
the
this
line
a
ac
Bj
is
draw
AC.
parallelto
of
6
parallelto BC,
line
give
ab
equal
from
W,
B^^
Draw
Bg*
to
the
of
magnitudes and
and
studies
Fig. 90. various
bers mem-
wind
load,
acting
first
a
TRUSSES"
ROOF
from
and
right
the
values
maximum
of
of
we
comparison,
solving
the
the
the
Two
will
Methods.
problem by
the
Fig/
carried
be used
type. the The
boarding
wood
on
being of
The
For
"
in
the
actual
an
and
methods,
the
sake case, paring com-
results. is to be
engineering workshop
An
to
two
used
be
consider
now
the
left, and
the
should
found
thus
design. Comparison
from
then
153
PRESSURE
WIND
principals
is 8
the
J
the
loading
40 lbs.
the
is 24
pitch of are
truss
right-angledstrut-
as
ft.
Pitch
under
"
superficialft
ft. superficial
(horizontal) per
of
the roof is 30".
superficialft.
3 lbs. per
SlateSy 8 lbs. per
Windy
of
building
2 Jbs, per
Boarding^
purlins, the roof
and
ft, and
particularsof Purlins
the
slates
90.
steel and
of
span
with
roofed
sq.
ft.
GRAPHIC
ELEMENTARY
154
Approximate
weight
of truss
STATICS
"
w.=f?p(i+l) + ?|) fx24x8(l
=
489-6
=
of rafter
Length .-.
(from drawing)
of roof
Area
supported principal
each
by
lbs.
"
Dead
load
equals"
500
=
13'5
g x
ft.
13-6
8
X
)
sq.ft.
216
=
/.
lbs, say.
=
Purlins
216x2=
432
Boarding
216x3=
648
Slates
216x8
1728
=
2808 To 3000
for
allow
make
contingencies
Dead
.*.
Load
at
abutment
jointover
Load
="
^"
at intermediate
joints
acting horizontally
=
"
Pn
=
P
(sin ") 1-84
log Pn =(1-84 =
cos
/.
'P^
=
^-
1
"
lbs. sq. ft.
lbs. per
(^=30")
^-1) log sin ^+log
{(1-84X -86)- 1} log 0-5+
=("58x1-699)+ =
cos
-
880
40
=
lbs.
440
=
load
lbs. =W.
=3500
load, including truss
=
Wind
load
lbs.
.'.
.*.
dead
P
log 40
1-602
1-427 26*7 lbs. per sq. ft.,normal
to roof.
ROOF
Normal
/.
load
wind
of truss
side
one
i
on
Wind
load
2880
lbs.
W2
=
2880
joint over'i
at
.^
g
J =
.*.
155
PRESSURE
WIND
TRUSSES"
_
abutment
and
4~"
i
apex
.-.Wind
load
mediate
inter-)
at
2880
f
joint
2
the
set
now
can
jointsand
and
will
We
members.
is fixed
truss two
cases,
and
wind
load.
ah
line
forces
acting
of
direction
the
of the
direction
acts.
Now
resultant
through
of the the
the
roof
load and
of
loads
R^
which
the
dead hence
W) (i.e.,
roof.
(i.e., Wg)
is
the
No. the
on
and
a
",
acts
uniformly
Rg.
and
1,
truss
on
and
the
giving
we
also, the Before we
resultant is
load
can
we
external
R2,
the
the dead
combined
and, hence
resultant
of the
apex
that
inclination
truss, its
roof, and
dead
at
various
of all the
resultant
that
the
the
case,
reactions, R^ and
know
over
the total wind of
points
the
magnitudes
we
distributed
loads
point through
the
first find
the two
the
settle
can
the
on
diagram
diagram
to
external
the
represents
stress
in
the
first with
Join
ah.
load-line
loads
this
in
Referring
all the
wind
ends, and, in comparing
will deal
we
the stress
assume,
both
at
first set down the
maximum
the
and
to construct
proceed
determine
so
dead
these
out
lbs.
1440
=
We
lbs.
720
=
we
must
ah
uniformly draw
the
acting vertically
Again
we
normally distributed
know to
one
over
that side
that
Fig.
91.
HOOF
TRUSSES"
side, hence
therefore
point
a
We
resultant.
draw
it
with
o7
is
wind
been
of
the
of
load
will
and
x
of
the
a
line
x
to
join o^a
and
and
with
In
between
the
dealing
with
with
the
when
dealing
with
wind
load
the
at
use
forces
two
dead
the
becomes
abutment
wind
and
dead
making
along
the
now
bte scaled
the
space.
when
will
position diagram
same
letter
la
should
stresses
and
which
should
diagram
act
complete
and
equal Rg
stress
the
B, and
omit
again
of
assumed
omitted
Similarly
lines
action
polygon
economize
over
being
be
roof,
x,
through
dealing
omitted, thus,
B
AB.
In
to
of
pole o\
a
the
lettering,the
load, the letter
draw
separately, the used
been
has
in
li^ can
kl
tabulated. load
has
intersect
difficulty.The
no
off* and
The
line
the
closing line, parallel to
drawn;
equal R^. The drawing present
rafter.
funicular
dotted
now
the
the
on
Select
the
the
to
will
and
B^
parallel to ak. o'i;
normal
therefore
ak;
parallel to
loads
two
157
Wg,
of
mid-point
of these
action
draw
can
the
through is
we
PRESSURE
WIND
AC,
the load
wind loads
we
is
abutment
again AC. No.
Diagram loads
only.
diagram the
wind
No.
the
this
load
3, calls for
load
roof
alone) R3'
the
wind
The
is
be concentrated to
2 shows
a
surface.
line, and
little
The will
R^ it
single
now
diagram for
diagram,
acting alone,
in
and
a
stress
force
can
Wg
reactions therefore
remains
shown
as
acting act
to
it to
assume
(due
in
When
explanation.
we
dead
normal
to
wind
parallel
determine
to
the
GRAPHIC
ELEMENTARY
158
of
magnitudes o''a
join shown
Draw
o''g.
Select
funicular
the
line ; gl will
closing
equal R^
and
o"
pole
a
polygon
as
o"!
parallel
and
la
chain-dotted, finally drawing
the
to
and
R4.
and
R3
STATICS
will
equal R3. Diagram wind
load,
induced
2
3
and
it
in
stresses
II
No.
the
shows
will
noticed
be
diagram
be
that
seen
agreeing fairly closely,still These
drawing,
in
errors
tends
latter
bring
to
assumption
that
but
there
about
this
show
from
resultant
R^ new
and
reactions,
hi.
values
for
R^
and
obtained
diagrams
by
Rg
R^^and
Nos. 2 and
3.
positionof i,which
modified
stress
the
the
method
We
of of
not
This
The
the
the
find
coincide
with
give
a
slightly
in
a
slightly
result
a
the with
coincide
indeterminate to
that
as
of the reactions
would
would
each
were
quite easilyfind
would
which
the
nature
large extent, by
supporting
walls
and
the
the exact fastenings,makes of this makes the case impossible, and adopted, in diagram No. 1, as justifiableas
other.
action
do
by
reactions,
3, we
could
reactions, accentuated,
twisting
any
diagram.
yielding nature
solution
and
2
made
Rg
the
the combination
different
of
We
crepancie dis-
which
cause
difference.
found,
so
Rg parallelto
the values in
Nos.
diagrams
Nos.
for
accounted
parallel to Jca^ but, by combining found
Table
slight
some
be
of
the
diagrams
is another
directions
the
is
figures,although
the
might
shows
1, while
No.
the
stress
no
I
off from
scaled
stresses
that
Table
off from
for
diagram
stress
PQ.
It will
3.
the
member
scaled
as
and
the
shows
160
ELEMENTARY
abutment.
again
make
of
use
side
of the
down
all the
reactions
is
of
forces
STATICS
funicular
the
employed
windward
resultant set
finding the
method
the the
In
GBAPHIC
this case,
roof
acting
at
loads
we
polygon, although On
slightly different.
the
external
in
first
we
find
joint,and
each in the
line
.
a/.
the then
Select
^:^
a
pole o,
and
join
the
lines of action
the
funicular
point of the
arises
Rg, we
here
in
as
various
two
loads, and A
We
reactions
that the line of
very the
with
R^
and
action
construct
important
construction
closing Rg. Regarding
that
know
Produce
of.
and
oe
showu.
connection
polygon.
join the
know
of the
polygon
funicular
line must
oby oc^ od,
oa,
must
the
be vertical,
ROOF
while
the
TRUSSES"
the
through
pass
its direction line must we
from should The
and
and
Referring to the the line joining af all the If
external
we
and
to
a/, then
draw
will
loads
their
If
(R).
produced
first and
last
through o\ diagram for himself various
Saw-tooth
The
the
of
action
it will be
student
by drawing
wind
Fig. 93
"
dead
and
left,while
is fixed, the
of
can
the
and
A
line
a
of
of the
lines
parallel of the
line of action
the
o\
(R)
and
R^
found
Rg
that
R
complete the stress diagram
members.
Roof.
subjected to
intersection
in
that
seen
in the spaces
lines
give
to intersect
passes
from
truss.
lines
the
in the
resultant
the
it
good.
holds
it will be the
represent
acting on
through
polygon
easilydetermined
are
the
R^, hence
end, and
always
diagram,
this line will
resultant
for the
rule
the polygon (i.e.,
F)
be
force
produce
now
funicular
Rg
of
fixed
the
at
AB,
closing
funicular
our
this
that
R^ fg.
Our
line of action
commence
joint
noted
reactions
lines ga
to
abutment
be
the
on
it must load
the
still undetermined.
being
terminate
the
under
joint
abutment
compelled
are
R^ is,that
about
only point known
161
PRESSURE
WIND
left-hand
the
shows
a
saw-tooth
loads, the wind
blowing
side of the
right-hand
roof
truss
side
on a roller. being mounted student The structing experience some diflScultyin conmay the funicular The polygon in this case. be begun from construction must the abutment joint
parallelto that
Doubt
EF.
under
oc
is the
oc L
may
should ray
be
between
arise drawn.
to
as
It
the force
where should
he and
the be
line noted
erf, that, so
162
ELEMENTARY
in the
form and
funicular the
CD.
link
GRAPHIC
polygon,
the
connecting
Note
we
get
STATICS
line
lines
the
crossed
a
parallelto of
will
oc
of
action
in this
polygon
BC
case.
Fig. 93.
finding of the reactions and straightforward,and calls for no The
Island
Station
in connection in
dead
loads
with
finding
Roof. this the
alone, and
"
case
The
stresses
further
is
quite
explanation.
only important point method
is the
reactions. assume
the
If these
we
to
to be
consider be
ployed em-
the
uniformly
ROOF
TRUSSES"
equal, and
Consider
now
each
the
has
a
moment
(Rxa:). the
(R) This
has
on
about would
the
tend
right-hand support.
reactions
two
the
total
resultant
the
load. wind
94.
truss
the
the
half
to
which
Fig.
pressure
that
equal
effect
163
PRESSURE
it is obvious
distributed, then will be
WIND
; it will
be
seen
that
right-hand support equal to
This
caus"
a
rotation
tendency
to
R to
about rotation
ELEMENTARY
164
GRAPHIC
is counterbalanced
acting
force distant
support,
Hence
right-hand support. have
downward
a
left-hand
the
at
by
STATICS
for
(say Rg) from
y
equilibrium
the must
we
"
Rxa;=R8Xy. Rxa;
Rs= y
dead-load
The
therefore
reaction
R,
is
load-
dead
i total
=
support
by Rg.
diminished
."
left-hand
the
at
.
.
y
Coming shows
part
readily be
it will
only
of the
dead
g'
where
loads
resultant
wind
found
from
y
We
would
let
that
set
the
reaction
complete
us
suppose
R^,
load-line that
lbs.; it
3600
=
considering
were
will
the be
"
3600x1
1
p
,
^"^'"
=24=12'
therefore
the
(R)
pressure
we
give
of
Now
only).
measurement 2
a:
g'a
now
adf. Fig. 94 (a) enlarged scale, and
an
that, if
seen
we
line
the to
mid-point
is the
(for dead
in
load-line
loads, then
diagram,
stress
loads
external
the
down
the
to
now
mark
^^^,,
R3=^2-=^^^'^"off
g'g equal
to
300
lbs., then
equalsthe reaction R^. The reaction Rg is obtained drawing of the stress diagram by joining fg. The presents no further difficulties. not be forgotten when It must working out stresses
ga
due when
to wind
loads
the wind
on
blows
roofs
fixed
from
the
at
one
end
right,very
only,that different
TRUSSES"
ROOF
will
stresses the
wind
design, obtained and
in
blows
therefore, for
the the
be
maximum
design
the
PRESSURE
WIND
from
obtained from it
the is
wind
calculations.
For
left. that
blowing
possible
obtained
those
essential
loads
165
from
so
when of
purposes the each
obtained
be
stresses
direction, be
used
CHAPTER
AGED
BR
The
of
science
braced
which
large
to
a
to
some
to
deal
extent
here
simple
Fig.
in
this
truss,
with
of
nature
the
and
the
beam
a
a
stanchion, the The
whole
solution
single
the
Design. The
deal
that
nation examibeam
a
changed
kingthat is
members
various
the
is
An
difference,
is
being
inverted
an
to
the now
sion, compres-
tension. loaded
in
load
a
of
the
first
case
166
different
two
load
concentrated
.with
length in
the
to
be
may
or
reality
; tension
compression
with
over
in
stresses
these
to
clearly
and
intended
not
Stanchion."
important
this
bridge,
stanchion.
show in
is
have
single
is
way
It
depend
Structural
on
we
will
95
reversed
completely
Such
with
the
loading,
Single
which
beam
of
braced
either
with
case
braced
works
with
Beam
simplest
of
questions
of
ings load-
The
subjected
are
the
members
work.
bridge
locality.
in
involving
various
the
purposes
the
discussed
Braced
in
the
on
with
in
useful
very
problems
structures
on
extent
adequately
rod
used
such
another
of
stresses
structures
to
finds
solution the
GIRDERS
AND
graphics
of
determination
of
BEAMS
the
in
application
X
distributed
ways
directly
over
uniformly
beam. does
not
call
for
any
:
GRAPHIC
ELEMENTARY
168
introduces
type
pin joints
assume
it will
at
be
once
at
seen
loads
the
If, however,
the to
the
over
it
^w^
NA/
from
FG,
and
this
particular
the
additional
hence,
for case,
is not ing draw-
the
out
in
gonal dia-
necessity.By
a
stress
diagram
for
unequal
loading
it
will
that the
seen
For
a
be
diagonal
becomes
then
96.
no
induced
member
Fig.
stress
that
is
stress
will be
the
diagram,
\o
a
required. are equal
be
steady, it
seen,
is
complete, an
stanchions and
\/v
panel
central make
we
stanchions,
the
(shown dotted) will
member
additional
that
If
interest.
of
head
the
in order
frame, and
deficient
points of
two
or
one
STATICS
sary. neces-
variable
load
both
must
be added.
diagonals
Trapezoidal Truss. "
The
trapezoidal truss,
further used
for
still the
for variable added.
student
of
modification
central
loading
Some in
longer
spans.
in
shown
this
type
The
same
panel applies in double
Fig. 98, is of beam, remark this
counterbracing
case,
must
a as
garding re-
and be
will be experienced by the difficulty will be solving this case, but the difficulty
BRACED
BEAMS
if it is remembered
easily overcome in
stanchion
any
top end.
Truss.
bracing
the
is that
simplest
which
is
have
we
acting
ends
of
with
marked
x,
the
will
the
by the
fixing is
the
point
is
This
AB. the
AB. y, and
the
simple,
can
joint
then
next
this
gives
I,
will
The be
abutment,
the
over
The
point and
Fig. 97.
triangle
efk. We the
equal
polygon eagf,and
load
marked
cd.
time, that
give solve
Taking
in America.
remembeiSng, in FK
forces
(Fig.
must
we
the
load
the
truss
our
obtain
same
stress
Fink
the
of
top
ah, be,
to
modification
and
down
as
begin
now
point
three
the
diagram,
stress
of
its
in
set
order
to
at
in
largelyused
stanchions,
load-line
the
at
the
with
important
the
first
at
stress
acting
load
diagram
adopted
case,
equal loads, AB, BC
In
stress
Another
"
which
99),a type
we
the
to
the
that
x.
Fink
CD,
equal
the
Begin
marked
the
is
169
GIRDERS
AND
point the
on
pass to
the
given
as
joint under
solved
be
is that
polygon ekhl, thereby of
remainder
readily
the
followed
solution from
the
diagram. The
student
is advised
to work
out
a
similar
truss
170
in which
in the
ratio
BoUman in
the
members will
student,
unequal, say AB, BC,
are
2, 3, and Truss.
Fig. 100, the
loads
the
STATICS
GRAPHIC
ELEMENTARY
"
CD,
4.
the
doubtless the
of the
determination
^The of
but
and
truss, shown
BoUman
present
some
diagram
stress
stresses
in
difficulties to can
readily
be
a
I
c.f
Tn".TV.
Fig.
98.
Having set in the line ad, start with the loads down the joint From marked reaction x. ef point, draw e, the and ek parallel to EK. Place the parallelto EF vertical line fk equal to the load AB, with its ends / the lines ef and ek respectively. Pass and k on on of which solution to the joint marked is then y, the obtained
by
the
following construction.
BEAMS
BRACED
given by
be solved
next
the
the
in
stress
now
on
pass
thence
to
the
equals
joint
student in
CD
will find
solving are
Warren
the
under
will the
of
the
joint
the
to
case
the
the load
Fig.
99.
be
readily
completed in
which
Of
the
in
stress
over
valuable
a
joint
171
marked
z
polygon kfgl,remembering
in the EN
GIRDERS
The
triangle eno.
quent procedure examination
AND
We
abutment, AB.
The
followed
force
and
KL.
the
loads
that can
aud
subse-
from
diagram.
instructive
can
an
The
exercise
AB, BC,
and
unequal. Girder.
"
various
types of girders,
172
ELEMENTARY
which web
bracing,probably
is that
invented
him, the of
of
composed
are
STATICS
GRAPHIC
top the
and
simplest
by Captain Warren,
Warren
parallel top
girder.
The
bottom
and
triangulation system.
These
and and
known
best
called,after consists
simplest form booms,
with
booms
bottom
with
a
triangles are
single usually
Fig. 100.
although this particular shape is not a equilateral, of the girder; but one important special feature girderstruts and point to note is,that in the Warren various all of equal length. There ties are are ways be arranged and this type may in which a girder of loaded, but consider
it will
only
three
be cases.
sufficient
for
our
purpose
to
BRACED
Case shows on
a
the
Set
I.
ah c
It will
Load."
to
from
a
represent W,
and
consideration
of
readily be
produced
to
3*5, hence, by taking moments, of the
will
cut
the
lower
reactions,thus
then the
boom
in the we
fix
101 W
the
positionof
the line of
that
seen
W
value
Fig.
girder of 5 bays, carrying a load joint from the top left-hand end.
second
down
173
GIRDERS
AND
Concentrated
Single
Warren
position of
W.
BEAMS
can
"
RjX5
=
Wx3-5.
Ri=0-7W.
R2X5
=
Wxr5.
R2=0-3W.
action ratio find
of 1*5
the
The
point and
0-7W
therefore
of this
difficulty.Start
problem
at the lower
Fig.
Rj,
and
various
as
then
shown
in
previous case, a
taken
so
should
now
that
ca
=
Fig. 102, every
load, each
load
are
joint over
the
the reaction
bracing, solving
the
met.
Distributed is
present
102.
along
zigzag
points as they II. Uniformly
Case
be
6c=0-3W.
solution
The no
must
c
STATICS
GRAPHIC
ELEMENTARY
174
simply
Load." an
This
expansion
case,
of
the
now joint in the top boom ing carrybeing of equal magnitude. The
176
ELEMENTARY
while its
the
the
as
members
of
of this
furtherance
It will be this
truss
short
as
Linville
idea, the from
given section In
arranging be
subjected to
as
possible.
truss
Fig. 104
that
In
was
duced. intro-
the
struts
giving the
vertical, thus
are
a
the members
made
seen
of
by
it will therefore
structure
that
be
loads
strut
a
influenced
is not
is decreased.
braced
to arrange
compressive
of
length a
STATICS
tie-rod
a
length, the strength
economical
in
of
strength
increases the
GRAPHIC
shortest
possiblelength for any given depth of girder. In the loads in determining the stress, we first set down line af and take the the mid-point gr, since the reactions then the joint start with are equal. We can the left-hand at abutment, and zigzag along the This bracing, solving the joints as they come. method presents no difficulties until the joint at the is reached. foot of the vertical NO The difficulty can, however, be overcome by assuming that the stress in MN is equal to the stress in the member the member fix the point 0 if we of course, We OP. ber rememcan, be equal to CD that the stress in NO must ; but, the load CD first,the by treating the joint under assumptions which point O is fixed without any The mainder remight not be quite clear to the student. solution is quite straightforward, of the although, when to
the
draw
is
loading than
more
symmetrical, one-half
it is
of the
necessary un-
stress
diagram. Pratt
Truss.
truss, known Lattice
"
as
Fig. 105 Pratt
the
Girders.
shows
"
If
a
modification
of this
truss. we
take
two
simple
Warren
BRACED
BEAMS
girders,invert other,
get
we
of them, and
one
arrangement,
an
illustrates
which
fact that
this
type
of
type
of
girder is
and
solve
system
together.
stresses to
each
error,
certainlyhas
majority of cases, by drawing systems.
The
subjected to M
This
a
time one
in
shown lattice
made
up
method girders suggests at once a namely, to splitthe girder up into
Fig.
it
superpose as
one
177
GIRDERS
AND
the
on
Fig. 106,
girder. The of two simple of
its
treatment,
components,
104.
separately,finallyadding method, although
stress
liable
advantages, but, in
many can
more
be
saved
diagram
and to
in
the
the
errors
ated obvi-
serve
both
Fig. 106 is system of symmetrical loads,and hence lattice
girder
shown
ELEMENTARY
178
the
will be
reactions
We
therefore
can
of
If
we
we
at
are
joint in
every
of forces
has
structure
of which
than
more
it would
Hence
with
seem
that
only
economize
the
stress
facts
it
are
a
system
unknown.
is insoluble.
case
gram, dia-
that difficulty
acting on
the
select
diagram
the
two
load.
and
to
draw
to
beset
the
drawn
been
has
total
the
load-line
length. (In
once
the
to half
the
attempt
now
STATICS
equal
down
of its
load-line
the
space.)
each
set
mid-point
fc,the
part
GRAPHIC
If
Fig. 105.
examine
we
the
inverted
girder,it
will
be
the
AB,
CD, EF
loads
forces
can
say
that
seen
this
GH,
and
members
AL
component and
that
from
transmitted,
are
the
through
triangulationsystem
and
the
supports
the
the
Ha.
of
supporting abutments,
Therefore
we
"
Stress in AL
Stress
in Ha
CD
AB
=
GH
=
+
+
-h
EF^^^^
^tJ^. 2
the
At
KA, a
left-hand
which
downward
is
abutment
we
have
a
total
reaction
produced
by
two
distinct
load
to
the
upright system,
due
loads, namely, trans-
BRACED
mitted
direct to the
due
the
to
inverted
calculate
the
system,
the
member
stress
in
through
and
abutment,
179
GIRDERS
AND
BEAMS
transmitted
and
AL,
to
We
AL.
load
downward
a
the
ment abut-
therefore
can
it down
set
as
al
H
K
V.
106.
Fig. in the
load-line
case.
No
further
be
treated
the
point at
vertical
; the
in
the
the
to the
sloping member
point
I coincides
will difficulty
following
left-hand
joint LM,
under
be
order:
abutment, AB.
solving
with
c
in
this
met, if the joints First then
Next first the
go pass
pass
round up
along
the the
joint at^the
180
GRAPHIC
ELEMENTARY
intersection, and inverted the
From
triangle. BC,
joint under
the
then
joint
so
of the
end
of
of
apex
tracing out
on,
one
the
at
the
point rise verticallyto
this
and
N-shaped paths from other. Only one-half
STATICS
the
girder
to
diagram need
stress
of
series
a
the
be
drawn. The
general
more
Fig. 107.
is shown
in
carried
by the
by
upright system.
the
the
only
can
be
calculated
joint under
the
AB
ratio
in the
AE
force AE
The
If any
6
end
X
verticals, the
girder into
AE
4, or
exist
which
AE,
that
two
tions por-
"
set down
should
therefore, is
It will be noticed the
is
is carried
in
stress
4, hence
AB
=
is then
doubt
affect the
divides
2 and
X
the
AB,
AB
load
BO
while
load
The
follows.
as
the
case
system,
affects
loading
unsymmetrical
this
In
inverted
which
one
of
case
$AB.
=
in the to
as
line
ae.
of the
which
readily
be
can difficulty
loads
by tracing out the diagonals forming the sides of the triangles. If the last diagonal finishes then the abutment, the load acting at up directlyon effect the joint,from which the tracing began, has no the end vertical,but if the last diagonal finishes on
overcome
at the
up
be calculated
must
This, of
by
the
end
to
its effect
vertical, then
moments
refers
course,
above
The
shown
members the
of
already explained.
as
loads
on
both
top
and
booms.
bottom
case
end
top
loads.
rule in
have
does
not, however,
Fig. 107 (a),where been
These
introduced verticals
are
a
hold series
good of
immediately intended
to
in the
vertical
below fulfil
a
BRACED
important
very results
attained
made, is doubt. the
If
purpose, are
in
but
refer in
GIRDERS
whether
accordance
question which
a
we
stresses
AND
BEAMS
181
the
with
is open
practical
the
tions assump-
to considerable
that Fig. 106, it will be seen two intersectingdiagonals are
to
any
Fig. 107.
unequal, and
the
vertical
of the these
stresses.
vertical its
top
member end.
object to The
be
attained
members
assumption
carries one-half
Thus, if
is the
we
consider
is
the
duction intro-
equalizationof made
of the the
by
load
load
that
the
acting at CD, it will
ELEMENTARY
182
be
that, without
seen
is carried
of CD
inverted
the
by
STATICS
vertical
the
member
vertical
the
GRAPHIC
system
added,
is
member, ;
when
while,
inverted
the
whole
the
system
CD
vertical, and
the
When
system.
FG
and
of each
half
would
points on load
the
the
on
abutments
by
therefore
equal AR
The is
case
it
r
this is
and
lower
boom.
end
to
down
that
load
we
the
on
while to
load
AL
on
the is
EF^FGX ,
again adopted
diagram,
sponding corre-
abutments,
The
DE
CD
procedure
the
load
is transmitted
verticals.
end
the
the
to
The
the
consist
"
set
noted
by
boom
/BC
1
now
same
being
to half
the
whole
BC, CD, DE,
loads
transferred
direct
the
separated by
of the
loads
the
girder to
be
upper
the
the
now
is carried
boom
lower
all
imagine
and
booms
bottom
One
verticals. EF
and
could
we
removed
to be
bracing
rigidtop
AL,
on
upright
the
by
consider
to
transmitted
being
finallycarried
come
we
effect
their
of the
of
half
other
,
along and
the
carries
only
draw
as
in
followed
was
drawing
the
stress
its
top
at
op
line al.
in the
in the
the
end.
vertical
vertical is
Thus,
and
diagram,
stress
in any
previous
in
mark
the
off op
equal stress
equal
BC ,
to".
Only
a
part
is sufficient
to
of the
stress
show
that
diagonals are The
effect of
the
now
diagram the
is
shown,
stresses
in
the
but
it
secting inter-
equal.
verticals
is therefore
to
equalize
164
ELEMENTARY
this
GRAPHtC
particular case of the
make
back
of the
use
have
we
balance
STaTICS find
first to
tude magni-
the
weight, and, in doing so, we polygon. The student will
funicular
in setting down experience a little difficulty loads, since, at the joint under MN, we have two
doubtless the
forces
EF,
acting, namely, is
which
loads,back
to the
hence
downward
;
draw
of action
of W
polygon
in the
point
to cut
the
must
pass
through
oa'
draw
structure
back
to
The
stress
diagram
Set
magnitude
about
is the
ha'
the
setting
force, EF, which
a6, 6c, cd, and
in the
point y.
produced,
when
From
shown.
as
gives cause
foot
of
The
straightforward.
back
remainder
of
out
is of
de ; the
then
line
first line
the
will
course
the
tude magni-
the the
hence
measure
balance of the
the
whole
member in
the
load-line.
equal
to a' a.
force is EF
next
a'a, acting upwards,
upwards equal to a'a, and ghy leaving ha the downwards.
y,
a
funicular
only point calling for explanation
the
down
and
which
Select
oh, cutting the
polygon,
F,
EG,
becomes
the
MN
xy, and
letter
ah.
Produce
pointsx
balance
balance
MN.
Replace
the
parallelto
of the
joint
member
the last line of the link
polygon,
it, the
construct
x.
the
setting out
load-line
the
Now
o
the
at
and
rays
force,
of the funicular
last link, parallelto
the
In
and, with
in
downward
downward
a
joint.
force
the
polygon, of the
EF
such, it appears
as
pole o
load at the
reaction,
or
all the
included, and
force
the
the
and,
of
sum
for the construction
delete
we
the
to
balance
FG, equal load-line
equal
force
upward
an
of
c/
measure
downwards
/gr
weight acting solution
is
quite
BRACED
GIRDERS
AND
BEAMS
185
Examples. 1. A
trussed
carries
beam
a
of
load
2 tons
at
the
f m
s
K
a
b c
r
\.
^P
d
n
Fig.
centre
of
stanchion
an
18-ft.
2 ft. long
span.
108.
The
directlyunder
beam the
has
load.
a
single Deter-
186
mine
the
material
by
the
if the
2. A
in
stresses
intensity of
section
to the
are
lbs. per
The
the
ft. wide, is
10
supported
and
Find
load
the
the
at
The into
is attached
superstructure
maximum
sq. ft.
beam
6 ins.
X
abutments
at the
trusses
and
the
in
stress
the
ties,and
and
in Fig. 97. type shown 8 ft. long, divide the truss
divisions.
stanchions, and 180
is 9 ins.
the
stanchions, which
equal
stanchion
ft. span
of
trusses
three
the
compressive
bridge,60
two
STATICS
GRAPHIC
ELEMENTARY
of the
head
equivalent
is
in
stresses
to
various
the
members. 3. A divided
The
loads
from
the
the
stresses
4.
four
into
long.
has
trapezoidal truss
in the
5
members
and to the
5 ft.
stanchions
stanchions, reading
respectively. Find
2 tons
loads
in
the
previous
respectively,find
tons
is
ft.,and
40
members.
the
Assuming
by
of the
top
2, 3, and
left,are
2, 3 and
the
of
span
divisions
equal at
a
which
determine central
stresses
diagonal
if the
panel
the
plied sup-
diagonal
in the
stress
in the be
must
be
to
case
is to be tension. 5. A
Fink
truss, 30 ft. long,has four equal divisions,
being
stanchions
the
of each
stanchion
various
members.
6. A 49
the dead
ft. long.
is 2 tons.
load
The
Find
the
at
the
top
stresses
in
the
railway bridge,crossinga river, has
ft.
each
4
The
divided truss
into
is 8 ft.
load is
live load
bridge
is
is
7 It
supported of
bays is
to
two
7 ft. each.
estimated
equivalentto equivalent
on
a
span
Fink The
trusses,
depth
that
the
maximum
35 tons, while
the
maximum
1 J tons
per
of
ft. of
of
length
BRACED
Find
the
maximum
variation
BoUman
a
six
trusses
70
of
span
the
and
members
trains, each
ft.
12
the
the
on
If in
stresses
tons
structure super-
live of
consists
bridge
ft. of
two
termine De-
length.
of the
members
various
the
The
into
maximum
the
per
railway
a
divided
are
deep.
tons, and
weighing
the
to carry
trusses
are
come
may
used
are
The
140
w*eighs which
ft.
and
equal panels
load
in
stress
187
GIRDERS
AND
in stress.
7. Two across
BEAMS
trusses. 8. A
Bollman
ft. and
12
from
is divided
10
and
the
various
4
Warren
4, 6,
5 and
tons
the
each
horizontal.
the
Find
loads
the
girder,in loads
of the
magnitude A
Linville
boom,
a
and
Determine
4 tons
and
12. Determine
2
each
tabulate the
span into
six
tons
at
of
the
the
stresses
of
span
of which from
top joints are members.
in the
would
in
of
then
members
of 60
distributed
to at
in the
a
is divided
equivalent
the
at
joints,what
has
uniformly
a
top joints,a load
stresses
truss
on
Reading
stresses
the
on
lower
of the
ft. deep and
carries
in
stresses
previous question,had,
the
.
is 10
the
members
panels, the
support, the
to the
on
11
60" to
at
the
addition
four
of
4 tons.
If
10.
Find
2, 6, 4, 8,
are
girder,simply supported
left-hand
the
of
depth
a
members.
inclined
are
loads
the
abutment,
has
equal panels. Reading
respectively.
tons
ft.,consists
40
ft. span,
50
into five
left-hand
the
9. A
truss, of
2
be
?
ft.
The
truss
equal panels.
It
load
on
the
upper
each
of
the
ments abut-
intermediate
stresses
in the
joints.
in the
members.
above
truss
if,in
addition
carries
of
three
in
stresses the
addition the
lattice
girder
each
ft. run, of
Determine
Fig. 108,
tons
and
the
ties
from
a
joints
3 of
span
the
at
and
18,
18,
18,
12
tons.
each
if, in in
joint
tons.
ft. and
60
load
of
lower
three
of
consisting a
depth
a
0*6
boom
tons carry
respectively.
tons
stresses.
out
and
end,
the
pier, using
cantilever
a
making all the
respectively. tabulate
girder
carries
diagonals
right-hand
above
of
of
each
the
boom
upper
the
Draw
16.
has
at
the
joints
4
system
while
12,
load
a
the
and
boom,
of
Find
boom,
top
a
consists
at
tons,
has
106,
45^
loads
triangulation
The
boom
top
in
the
on
A
loads
The
loads
Fig.
are
2
the
on
stresses
carries
triangles.
of
the
boom
ft,
the
on
lower
system
the
each
are
lower
16
if
joints,
the
the
in
angles
members
also
to
15.
per
base
abutments
Find
14.
shown
as
triangulation
whose
the
in
joints
load
tona
Each
intermediate
the
the
girder,
ft.
60
triangles,
above
3
lattice
A
span
of
load
a
13.
of
each
STATICS
distributed
uniformly
the
to
boom,
top
of
GRAPHIC
ELEMENTARY
188
slope
longer
are
Determine in
ft.
80
magnitude
members,
long.
from
2, 3, 4, 5, 6, 5 the
the
arm
proportions
Beading
45^
at
loads
stresses
struts.
the
the
the
and of
W
W,
ing distinguish-
CHAPTER
OF
CENTRE
FIGURE
It
force
earth
motion
is be
the
the
body
point,
at
the
possible
were
into
single
a
as
upon
about the
the
earth
original
is
the
cerUre
of
of
condense
the
thep
of A
our
mass,
but
189
the
away
further, will
there the
body
the
fprce
the
magnitude
pulling
application
of
the
C.Q.
term
former
is The
?
is assumed
particle
better
;
of
material
the
that
body.
of
gravity
of gravity
acts
earth
weight
hence
;
it
balance,
of
point
force
position
the
force
direction
"
the
the
scale,
particle,
to
the
apply
its
sense
spring
a
the
centre
to
its
magnitude
the
which
termed
on
the
What
body
a
as
we
know
it towards
the
towards
We
?
know
we
;
on
can
some
"
body
measures
known.
is
the
registered,
which
force
velocity. that
of
spoken
extent
body, drawing
hang
we
is
move
which
by
body
a
will
evident
is
force
earth
what
vertically
it acts
be
the
this
to
it
The
acting.
it
ever-increasing
an
produced,
To
gravity.
specification
if
with
that, if
height,
a
INERTIA
OF
fact
from
^RESISTANCE
"
^MOMENT
"
well-known
a
towards
is drawn
AXIS
SECTION
drop
to
must
from
is
the
towards Since
OF
"
allowed
be
^NEUTRAL
"
MODULUS
"
Gravity.
of
GRAVITY
XI
act,
to
body.
If
of
body
the be
can
in
its
for
it
looked relation
this
point
expression
is
and
common,
more
STATICS
GRAPHIC
ELEMENTARY
190
invariably
is
used
in
this
be
made
up
connection. We
of
can,
however,
assume
number
of
infinite
an
by gravity,and finding
the
parallelforces. The simplest method is to suspend the body,
of
that
it is free
to
any
position
under
of
the
plate
109.
hang
a
through
A,
process.
The
0,
is the
which This
hence we
verticals
two
can
method
is not
the
more
There
0.
point
are
namely,
few
a
two
the
of
line,
plate.
contain
the
and
repeat in
a
the
point
adopted whereby
cases,
simple
bob.
-
always convenient,
be
the
pin,
the
to
Before, however,
complicated
advantage, study figures.
must
means
"
point
a
same
intersect
plate.
other
find the
will
C.G. of the
experimental some
A^
say
"
at
to pend sus-
vertical
will
line
an
plate,
plumb the
point
Thus,
first
the
Transfer
This
the
desire
we
would
on
up
have
we
We
A, and,
take
shaped
-
C.G.
find.
body
a
gravity.
Fig, 109,
whose
another
C.G. of
so
irregular
Select
of like
system
a
on
itself into
finding the
in
C.G.
acted
one
of
action
Fig.
to
resolves
then
resultant
the
body
each particles,
problem
the
of
the
ing consider-
might,
we
with
simpler geometrical cases
triangleand
the
of
extreme
portance im-
parallelogram.
192
ELEMENTARY
"Ach
Btde of
plates,in
GRAPHIC
the
the
EF.
Consider
horizontal
row,
line
same
EF.
Since
from
EF, their moments
these
individual
the
to the
left
The
C.Q.
line EF,
In
similar
a
will be
will
be
obtained.
E
equal
a
all the
plates on
therefore
lies
on
the
C.Q. must
lie
on
the
GH,
be
seen
0
is
4
the
Hence
that
the
It
will
point
the
section inter-
the
also
Rule."
is
O
required C.G.
^
other.
the
intersection
B
and
Every ing correspond-
plates on
the
way
has
line A
equidistant
EF
parallelogram
of the
and
about
all the
from
equidistant
right of EF of EF, hence
side will balance
one
small
two
any
equal weight
balance
plate to
partner the
of
are
opposite, hence
STATICS
gonals. dia-
of
the
yo
find
the
i_ p-
CO.
jji
of
gram, parallelo-
a
the
draw
diagonals
Many
arid
consider steel
solutions
It will
only
plate
required
be
one
of
to find
the the
AF
readily suggest
case.
given
In
position of
BC.
Find
a
of
means
to
is shown
a
it is
and
hole, from
which,
cord, it will remain
BE
the
a
a
the
connection,
Fig, 112 shape, ABCD,
plate be suspended by horizontal position. Draw parallelto
readily be
can
parallelograms,and
sufficient,in this
if the a
intersection.
trianglesand
into
preceding
solution.
their
simple geometrical figures
subdivided two
mark
two
in
parallelto AD, and C.G. of the triangle
BEG, P and
ABCF
and
SR.
The
points S
in the
is the
O
intersection
required hole, i.e.,the C.Q. Funicular Polygon Method.
Fig.
best
solved
The
problem simply
two at
by
the
two
resolves of
systems
right angles.
Let
left-hand the
between N
respectively. position of the R
shape of the
method
shown
leads
soon
into
funicular
itself into like
in
divide a
polygon. finding the
parallelforces, the another, preferably
one
polygon, draw
figure,and them
to
the
consider
us
irregular-shaped plate bounding
C.Q.
the
112.
of
aid
systems being inclined
first the
points
Complicated and irregular figures are
to confusion.
of
also
^Ifthe
"
above
figure be complicated, the
resultant
and
the
in
of the
parallelogram ADEB, Q respectively. Join QP. Find
and
of AFD Join
193
GRAVITY
OF
CENTRE
number
the
case
of
Fig.
113.
two
vertical
the of
the
Taking
horizontal
lines tance dis-
equal parts,as
194
ELEMENTARY
shown
by
GRAPHIC
dotted
the
Mark,
eight parts.
STATICS
vertical
on
a
lines
horizontal
figure, the
mid-points of these
verticals.
These
boundary
of
curve
the
R^ by whole
the
The
intersection
give
the
the
line
the
or
in
process
of the
lengths
reduced
in
the
construction
plane figuresof simpler when funicular the
that
position of inclined
beam
is then lie
C.Q. must
C.G. of the
on
the
in
section, we
of
C.G.
each
Fig.
proportionalto section. now
section
down,
subdivisions
the
which
set
The
the
area
each
of
drawing
the
found
in
the
point
resultant cuts th^ horizontal
centre
figure. beam the
up
into
find
the
points
draw
load-line, ad^
a
and
cd
each
are
respective part funicular
quite straightforward,and is
and
these
a6, be of
of the
determining
as
one
it is known
shown,
as
Only
the section
first divide
line, centre-
a
cast-iron
In
114.
portion. Through
perpendiculars,and
about
centre-line
for
of
cases
becomes
sections.
used
commonly
all
case
required, for
rectangular portions
three
Rg.
found, will
so
The
weight.
in rail and
case
is shown
sections
to
find
so
applicable in
figure is symmetrical
polygon
section
A
is
uniform
the
is the
as
portion pro-
already explained.
resultants,
two
cepts inter-
these
direction
a
the
ak, the
Find
method
by
cut
required C.G.
above
The
is
be
first,preferably at right angles, and
the
the
will
demands.
case
resultant
Repeat
in
in
case
through the raise widths, and
figure. Measure
down
this
line
interceptsbeing increased as
the
the
set them
and
of the
verticals
in
"
the
O,
at
line.
of
polygon
C.G. which
of
the the
OF
CENTRE
When
used
shown
as
of the
Axis.
"
In
exceed
not
alvtayspasses
sectioa The
the
neutral
all beam
the CO.
through
the CO.
axis. so
limit,the
of
ia
arrangement
sections,
the elastic
through
195
line N.A.
the
is called
section
does
beam
a
Fig. 115.
in
Neutral stress
as
GRAVITY
long neutral
the
as
axis
the section.
V
Fig. as
the
centre to
draw
should the
shows
116
metal
is not
line,it the
out to
Compression
east-iron
have
channel
section, and,
symmetrically disposed
becomes
two
work
sectioQ
a
necessary
polygons this the
flange,4
as
example
in
finding
shown.
for
The
about the
a
C.G.
student
himself, assuming
following dimensions, namely in.
x
1'5
in.;tension
flange,6
:
in.
in.; and
x2'5
8
web,
is 1*35
the
CO.
and
1*0 in. from
in.
in. from the
1*5
x
the
the
subjected
with
M
/ 2
of the
line of the with
of
web,
section.
the
strength
bending the
moments, moduliLS
have
we
of
section
to
of
Thus, let
"
=
bending
=
max.
=
to
position
114.
is termed
what
beam.
depth
"
Fig.
deal
centre
of
centre
The
in.
Figpures. In dealing
Resistance
of beams
STATICS
GRAPHIC
ELEMENTARY
196
(lbs., ins.),
moment
stress
modulus
induced
of section
at sect.
(lbs.p.
sq.
in.),
(ins.^).
ThenM=/x2;. The
value
of
z
varies
with
the
shape
of the
section,
CENTRE
OF
and, in determining its value make
can
of certain
use
Consider
117, and
let
in
sq. in.
per be
At
less and
will
a
equal
be
y from
distance
y' the /x ^
to
tions. construc-
shown
as
maximum
the
distance
any
given section, we
a
simple graphical
that
assume
layer,at
a
for
section, ABCD,
the
us
197
GRAVITY
Fig.
in
duced in-
stress
N.A, is / lbs.
the
will
induced
stress
is the
This
stress
.
y
intensitywhich
is
strip,
cross-sectioned
the
acting on
1 Fig.
whose
area
we
obviously, if the
stress
as
reduce
we
per
take
can
116.
a
this
area
a,
in.,since the total
sq.
Now,
inches.
square
will
we
increase
(/
stress
x
^
x
a
j
if
be
will
now
the
depth
width
lbs. per
until sq.
distributed of
the
the
over
same,
is a' and
area
in.,then
a
the
strip
smaller
have
we
the
area.
let
us
stress
Keeping reduce
its
intensity/
"
/X?^xa=/xa'. y
a'^y'
. .
.
"^~'
"
a
Therefore,
to
"
y
give uniformity of
stress
over
the whole
ELEMENTARY
198
of the
distances
to their
formed
when
have
now
a
from
uniform
stress
by
the
stress
(P) is equal to stress
per .-.
This, of below
the
course,
N.A.
of
/ lbs. the
proportional
In other
bounded the
triangular area,
of
be made
N. A.
the
Fig.
a
STATICS
stripsmust
stripswill be the diagonals
of all the
ends
We
width
the
area,
GRAPHIC
on
by section which
words, the
the
triangles drawn.
are
there
exists
116.
per
in.,so
sq. of the
area
that
the
tptal
trianglemultiplied
sq. in.
/x^. P=i(6x|)x/ =
applies
to
each
triangleabove
and
ELEMENTARY
200
be
N.A.
the
near
from
seen
show
GRAPHIC
examination
an
resistance
the
diagonal vertical It
might of
method section. done
be
and
round
a
well
to
the
a
respectively.
section
general
figure for
resistance
Fig. 120, N.A.
the
This
with
first
thing
Fig.
given to
done
be
may
a
be
by
119.
given instance, but, for unsymmetpolygon must be drawn. sections,the funicular BC at right angles to the and the lines AD
inspection in Draw
119, which
section
square
Fig. 118.
rical
and
Figs.118
will
as
worse,
even
explain briefly the
to
constructing a draw
of
are
figures for
Referring
is to
sections
Many
STATICS
the
N.A., bounding
the
section
on
the
and
left
right
respectively. Complete the rectangle by drawing DC and parallelto the N.A. and equidistant from of the lines, at least, being tangential to one section
at the
should
be
point
noted
most
remote
that, in this
case,
from as
the in
all
AB
it, the
N.A.
It
cases
of
CENTRE
OP
symmetrical sections, both
lines
the section.
as
the
that
of
case
The
sections
N.A.
Draw
verticals
in G
and
the
applicable in
be
in
F.
and K
about
L
N.A.,
E
From
and
in order
F
and
respectively.
the the and raise Join
EF
cut
j^
y\
L
H, which
points
two
are
used
; these
will
lines
given, is
unsymmetrical
are
in E
AB
cut
LO
and
tangential to
line,EF, parallel to the
section
to
will be
also
may
which
any
cutting the KO
wording,
construction
201
GRAVITY
on
ance required resist-
figure. Take a
such so
of
series
lines,
EF,
as
(sg
and
sufficient
obtain
enable points to the sistance complete re-
be
figure
to
in.
In
will
be
drawn
general, it found of
Let
the
transfer
then X
A 2
=
=
=
to obtain
figure by
resistance
the
and
convenient
most
distance
the
C.G.
the
of each
half
suspension method, the
C.Qs.
between
drawing.
in ins.
of resistance
of section
modulus
120.
positionsto
one-half
area,
^^s-
fig.in
sq. ins.
in in.^ units
Then^z=Axx.
Figs. 121 tee
section
It
must,
and and
122 a
show
cast-iron
however,
be
the beam
resistance section
clearly borne
figuresfor
a
respectively. in
mind
that.
although
the resistance
dispositionof
the
it does
necessarily follow
section If
lying outside examine
we
figurefor in the
web
is
metal
section, we
which
highly stressed
more
rsl
than
Pig. 121.
flange,and, tee
use
as
for
if the
section a
the
is
as
strong
of
material
in tension
case,
however,
section
the
be
compression greatly
tension.
For
cast-iron
on
the
metal
metal
a
we
have
compression
is, for
as
in
two stress
all
compression,
economical
an
in
drawn
resistance
the
steel,which
obviously not The
beam.
of
case
strength
one
useless.
Fig. 122
practicalpurposes, the
the
N
A
"
the
that
once
section,
parts of
figureare
shows
at
see
in the
all
that
resistance
Fig. 121,
tee
a
the
the
of the
indication
figuregives an
of efficiency not
STATICS
GRAPHIC
ELEMENTARY
202
is very
one
to
different
cast-iron, whose exceeds
resistance
that
in
figures,
base, as is shown
CENTRE
Fig. 121,
in
shown
base, as draw
and
another in
equidistantfrom that
one
at
point leaat
To
different
is
latter
parallelto this
the
stresB
i^oin
we
and
N.A.
important difference,
tangential to
now
from
remote
the
tenaioo
a
the
section
N.A.
the
portance im-
the
two
resistance
figures,
might
we
this
apply
GH,
203
on
In
it,but with
the
of
123.
and
o" the lines
show
GRAVITY
drawn
Fig.
linee,EF
two
a
OF
section
particular
to
given
a
'^
^
case.
Example. iron
caet-
section,3^
tee
in.
3
in. wide,
^ in. thick
through-
deep ia
A
"
and
What
out.
vxtvld
assuming /,=
section
the web
found
the
at
carry
of the
(a) Gompreaaion Scaling
^iff-^^a.
from
that
between
of a 3-ft.span,
placed uppermost
^=6000
U)a. aq. ina.
drawn
when
above
area
CGs.
full size,it
=
250.
2,= 25x-76=l-875
m_/xg^x
6000x1-875x4
4
" ~
"
L =
1250
?
base.
triangular
aq. in. ; distance .-.
atreaa
Fig. 121,
the
centre
section
Iba. sq. ins. and
2000
*""
load
safe
this
^
12x3
lbs.
the
was
N.A.='75
204
ELEMENTARY
Therefore, concerned,
GRAPHIC
far
as
could
we
tbe
as
STATICS
stress
is
beam
to
compression load
safely
the
lbs.
1250
(6) Tension
Scalingfrom found
that
base.
stress
when
Fig. 123,
the
full size,it
drawn
above
triangular area
N.A.
the
was
l-5
=
sq. ins.
2/=2-5x
/.
/X
w"
. "
1-5
L
4
x
lbs.
830
lbs. at centre, this
is 830
induces
which
3-75
X
123"3
-
Therefore, safe load load
4_2000
g/ X
"
=
the
3-75,
=
tension
maximum
the
being stress
allowable.
It should
will
cast-iron tension
an
at the
will be in
outside
of
layers
than
it would
compression, whose
at that
that
The
shows area
the
to
that
at
point.
limitingvalue the
down
that
appear
stress
seen
of
web, the width
the
stress
therefore
limiting value
Fig. 124
of
section
the
it will be
Fig. 123,
the
keep
to
overstressed
the
and
compression
maximum
acting simultaneously.
mind, however,
than
in
well-designed section
a
examination
is wider
provide, and
the
have
strip necessary limit
that
noted
stresses
From
that,
be
this
is very
given
point
can
the section be borne
It must at
a
point
much
is
a
higher
in tension. resistance
of one-half
of the
figurefor resisttoce
a
rail
tion. sec-
figureis
3'05 sq. ins.,and
C.Qs,
the two
(Note.
of section
Fall-size
"
moment
Inertia
of
in
produced loads, deal
with
the
momevi
138.
=
determining
ins. the
) tions deflec-
ternal ex-
to
inertia
section.
This on
the
shape
of
the
must
be
cal-
section,and
4'5
In
of
and
X
beam
a
qoantity depends size
of
centres
is termed
what
the
of
305
of 8ection=6
have
we
=
depth "
application of
the
on
the
ins.
45
Modulus
205
between
distance
the
IB
GRAVITY
OP
CENTRE
. _
culated
axis
neutral
sections, the is the
to
axis ; in beam
fixed
some
reference
with
reference.
of
axis
methods
Graphical
can
in employed again be determining this important
If we quantity. a body situated,
have with as
respect
shown
in
to
The
mrK
respect be
a
to
Fig. 125, then
moment
at
a
about
r
of inertia
which
from of
the
Referring we
of inertia of any
the moment
distance
xy=l=^r^.
particleof
inertia
axis xy,
an
little particlem
'"'K-124.
wish
P, P being the end
xy
will be
whole to
to find
equal to body with
Fig, 126, the
elevation
moment
let
m
of
of the axis
206
GRAPHIC
ELEMENTARY
of reference.
Set
down
ah
Join and
6b
IV.,
oh
and
oa
and
draw
have
moment
of
Now
set
an
and
down
in is
(abxr)
a
of ins.
parallelto
md
explained
as
wi, select
number
even
a6xr=cdxH;
oa
Chapter the
first
P.
about
m
represent
mc
respectively. Then,
we
to
H
pole o, preferably making
STATICS
cd
select
and
Fig.
pole o', making,
a
if
126.
From o"' draw possible,H^ equal to H. parallelto o'c and o^d respectively. Then again we have efxW^cdxr.
o^'e and
o7
abxr But
cd= H
,,efxW=^xr. id.
e/ X
.-.
H^
X
H
=a6 =
The of
X
abx
about
If the
above
and
that
so
in
P,
or
the
is full
finding the
r
termed
are
drawn
size, then value
the
second
of inertia
moment
diagrams r
X
r2=mr2=Ip.
quantity {ab x r^) is m
r
of
so
there
of
m
moment
about
P.
that
1 in. =
l
will
be
culty diffi-
no
lb.,
Ip,but, in general,both
from
Now
STATICS
GRAPHIC
ELEMENTARY
208
diagrram it will be
the
"5=
V
"
ef
(ms.)
r
that
seen
"
"
=
^
r^
r
/.
mr^
ef x
=
xg^xpxHxr,
"
T
(e/X g2 X p) X Hj
=
Thus
let
scales
in
used
lbs.,and
10
.*. Ip
=
215
=
2144
82
X
X
shown
1-25
X
of
can
a
ins.
2'15
=
l-25(Hi
X
=
Fig. 127,
of inertia,so
of inertia which
these
of the
of
System
readily
of inertia in
moment
from
10
of Inertia
the moment
moment
ef
equals
H
=
125
in.),
lbs. f t.2 units.
construction
are
ft.,and
8
The
lbs. ft.* units,
2160
Moment
the
equals
in.
1
are
ft.
12
15x12x12, =
as
equal
r
original diagram
the
1 in.
lbs. and
15
lbs. ft.^ units.
e/xg2xpxHiXH,
=
mr2=
above
equal
m
H
X
of
a
but
be
applied of
system it will
found, does beam
individual
Forces." to
The mine deter-
forces, such
be
seen
that
equal the (shown dotted) not
section
forces have
been
derived.
approximation can, however, be obtained, by of strips, dividing the section into a large number whose The section in are axes parallelto the N.A. A
close
this 8
case
ins.
ins.=12
X
is of
cast-iron, the compression flange being
4 ins. =32
sq.
sq.
ins.,and
ins.,the tension
the
web
12
ins.
x
flange 6 2 ins.
=
ins.
x
2
24 sq. ins.
CENTRE
We
first set down
12
respectivelyto Select
a
inches, and the
resultant
the
CO.
GRAVITY
a", be and
pole
o,
equal
H
making
an
funicular
the
R,
cd
209
to
32, 24
and
scale.
some
draw
of the
OF
will
which
Let
section.
even
number
of
Draw
in
polygon.
of
course
us
assume
pass
through
that
the
line
Fig. 127. of action about
of
which
R
is,in this wish
we
polygon, so
reference.
find
If necessary,
of the system. funicular
to
Then
we
the
case,
that have
the
axis moment
produce each
one
the
cuts
of
reference, of inertia
links the
"
Moment
of AB
about
O
Moment
of BC
about
O
Moment
of CP
about
0
=
=
=
+(aV x H), (6V x H), {c'd'x H). -
-
of the axis
of
GRAPHIC
ELEMENTARY
210
These
STATICS
of the
moments
respective forces
about
first
the
intercepts,multiplied by H, give
axis
the
of
reference. The
intercepts
drawn
made
possible,be the
cut
Then
axis
the
equal
H.
to
reference
of
required
being
xy
polar
measured
in
and
to the
H^
should,
Produce
pg
and
and
x
following dimensions original drawing:
if to
is
respectively.
y
a:i/xHxH^,
=
scale.
proper
The
polygon
distance
of inertia
moment
fresh
a
funicular
second
a
The
"pqrBt
as
down
set
now
selected, and
o'
pole
are
from
taken
were
the
"
Point
ins. from
0-7*5 H=Hi=3 scale
Force Linear
under
of section
side
ins.
scale
lbs.
in. =20
1
1 in. =2
ins.
iri/=3'l ins. .".
of
Moment
about
0
inertia
of
of
given system
forces
"
=31x22x20x3x3 =
I for the
calculated
The
2232
lbs. ins.2 units.
given
section
beam
is 2532
ins.* units.* It will
applied to Much
the
on *
In
the
areas,
a
same
Note
the
discrepancy
is
considerable,
particularsolution
accuracy
largernumber
of inertia can,
of
beam
a
be
however,
of sections, and
be
cannot
section. obtained
proceeding
lines. difference
previous t.e,
this
find the moment
greater
by taking
the
that
seen
obviously
that
so
be
case
to inches
\
we
between have
lbs, inches^ taken
forces
and as
inches^
units.
proportional
to
CENTRE
The
from
funicular
constructed to Professor
of
section
a
of the
measurement
a
211
GRAVITY
of inertia
moment
The
OP
specially
a
method
the
polygon,
of
area
mined deter-
be
can
due
being
Mohr.
construction
is first divided
is shown into
up
Fig. 128.
in
of
number
a
section
The
parts as shown,
perpendiculars dropped from the C.G. of each portion. A load-line is set down, as shown, in the Let the total length of this line equal x ins., line ay. and
then
the
polar
Construct
Let
of
means
of the
area
funicular
the
by
area
H
distance
is made
equal
ins.
-
its
measure
Measure
planimeter.
a
and
polygon
to
also
the
section.
Ai=area
of funicular
polygon
A2=area
of section
sq. ins.,
in
of inertia
I=moment
in sq. ins.,
in in.* units.
ThenI=AiXA2. It
should
further
be
noted
that
where
2=",
y=
y
the
of
distance
the
greatest
strained
fibres from
the
N.A. The the
size
section
undernoted
shown
is the
dimensions
same were
Fig. 124,
in
as
taken
from
the
and full-
drawing. Area
of funicular
Area
of rail section
Distance .'.
""
polygon (Ai)=4-6
of extreme
In.a.=4-6
3-25"
(A2)=10'0 fibres from
X
10=46
sq. ins.,
sq. ins..
N.A.=3*25
ins.* units.
ins.
212
ELEMENTARY
It will same
be
shown
case
obtained
this
STATICS
figure
from
is
the
resiatance
Beam
Section-
"
interesting adaptation of Mohr's of
practically the figure
Fig. 124.
in
Feppo-concpete an
that
aeen
that
as
GRAPHIC
a
ferro-concrete
beam
Fig.
129
method
section.
In
shows to
such
the a
beam
the
stresses, while the
tension
arranged
is
concrete
the
Elastic In
determining
f
"
^
b
c
Fig.
section,
into
beam
of each each be
first divide
we a
series of
strip a
stripand
noted
divided
that into
horizontal the
only
a
strips;the
"
__-"^
and
z
for such
a
o"
compressive draw
line.
areas
the
side of the
through
Measure
in the
portion of reason
I
129.
the
up
of
and strips,
set out
that
of concrete
values
^
all
takes
shown
has
of steel
modulus the
sive compres-
steel reinforcement
modulus
Elastic
the
take
to
Experiment
stresses.
213
GRAVITY
OP
CENTRE
the
the C.G. area
of
line ag ; it should section
will be obvious
need
be
from
the
ELEMENTARY
214
Through
diagram. oa
GRAPHIC
the
Measure
of the
area
Let
a'
total
off aA
(15
=
set
ah off to the
the
various
r
I
Then
N.A.
scale
of the
will
only
sr
has
be
one
to
the
when
be
to
(for steel) (15 x =
==ahx
the
scale
to
is measured
been
set
out.
half
size, the
funicular
polygon
scale, then same
the
H
its full-size
in the
scale,
some
measuring to
and
x2B,.
pqr
drawn
of the
horizontal
section.
drawn
drawn,
quarter of
I
construct
The
is measured
also
will be reduced Now
mind
been
reduced
Join
N.A.)=area
section and
a
and
ab, be, etc.,have
beam
section
drawn
length
pqr
to which
if the
area
be
area
section
to the
in
borne
of the
will be
section
be
The
the
ah
about
(for section
o,
to
for ag.
used
shown.
the
give
ins.
ins.,being careful
was
pole
will
which
Thus
the
to
of ins.
in sq. ins.
a')sq.
sq.
as
as
pqr.
area
scale
pqr
this must
and
x
a')
number
off
bars,
area=(m
polygon
general,the
In
of steel
X
mark
reinforcingbars. bar
m
same
points
funicular
through
X
and
even
of each
area
=
Then Set
steel
number
m=
vertical
a
preferably an
this
H, making
=
raise
a
STATICS
value, and
obviously
if the
proportion. steel
sq^.
area) x sq^
GRAPHIC
ELEMENTARY
216
STATICS
/c= crushing strength of
Let
of
distance
n=
N.A. Then
2=
greatest strained
particlesfrom
in ins.
L_2-?Li, and
"
in lbs. p. sq. in.
concrete
the
of resist. =^-^
mom.
n
n
Examples. 1. Draw
Fig. the
irregular figure,such
any
of the
CO.
funicular
the
by
Find,
113.
is shown
as
in
polygon method,
area.
Carefullycut out the figure and check your result by the suspension method. circular discs, 2. A steel plate is composed of two centre joined together by a rectangular piece, whose line passes circle. One through the centre of each is 3
circle
4*5 ft. and the
from
distance
The
C.G.
3. A
Draw
the
4.
Check
the
load
4 ins.
square,
(6)
A
circular
deep
and
5. A
tension
tee
ft. diam. circles
1*2 ft. wide.
1
wide,
on
beam
ins.
the
is
Find
modulus
of
and
find
4-ft. span
if the
stress
sq. in. "
diagonal vertical,
ins. diam.
in. metal both section
X
3 ins. wide.
calculation
(solid),
section,8 ins.O.D.and
section,
flange is 8
find
figuresfor
section, 4*5
cast-iron
a
side, with
circular
4 ins.
on
by
lbs. per
resistance
A
{d) A
the
deep by
is 6 ins.
result
2500
(a)
hollow
of
centre
figure and
your
to exceed
(c) A
beam
resistance
Draw
is 2*25
piece.
the safe distributed is not
to
centre
rectangular
section.
other
the
rectangular piece is
of the
the
and
ft. diam.
4
ins.I.D.,
throughout,
6
ins.
bases. is 18
3 ins. ; the
ins.
deep.
The
compression flange
CENTRE
ins,
6
C.G.
in.
If
X
OP
and
;
web
the
the resistance
Draw
217
GRAVITY
Find
in. thick.
1^
figureand
the
find the modulus
of section.
Calculate if the
distributed
safe
the
is not
in tension
stress
load
for
exceed
to
8-f t. span
an
2000
lbs. per
sq. in. 6. Draw
horizontal
a
forces,P, Q
S,
and
about
system
following
the
values
the
point
a
scale
its
the resistance
method,
1bs. + 6
check
the the
+8,
-10-7,
S + 10
+11-10.
depth
is 8
section
of
value
in
shown
of Question
z
to such
its C.G.
Find
ins.
Fig.124
Draw
of section.
find its modulus
of
moment
your
of
inertia
forces have
the
Q+6
figure and
the
A
"
the
Using
8.
when
the rail section
out
that
A
Apply
ins. from
8
of
moment
long.
:
P+8
7. Draw
8 ins.
AB,
ins.,and
ins.,5
3
Find
respectively.
line
7, find, by Mohr's
inertia
of
found
from
section, and
the
the
previous
question. 9. A 24
ins.
consists
reinforced
deep
to the
ends,
find
load
exceed
600
Find
(a)
Position
(6)
Value
of I
(c)
Value
of
beam
a
of
of
1
lbs. per
maximum ton
ins. wide
per
sq. in.
and
which
"
N.A.,
(total),
z.
of this section the
is 18
of the reinforcement,
centre
of 6 bars, 1 in. diam.
Assuming the
beam
concrete
simply supported safe
span
foot-run, if jc
for must
a
at
tributed disnot
CHAPTER
XII
WALLS
RETAINING
A
wall,
RETAINING
given
name
earth
sustain
to
is
daTa
The
opinion.
complicated
sustain
water
exert
a
wall, and that
P
must
will
tend
to
magnitude P
X
H.
of
Now,
such
as
the the
which
dam
or
Obviously P,
on
to
the
wall
wall,
that about
overturning of 218
moment
the
to
is
shown,
the
water
back
the
we
used
as
hydrostatics
seen
weight
very
tary elemen-
very
of
normally
the
overturn
and
arrangement
130.
be
a
are
difference
with
wall
Fig,
knowledge
readily
time,
wide
a
duced in-
stresses
and
of
case
The
pressure,
act
is
on
here.
pressure.
our
It
face.
subject
retaining
in
the
term
acting
present
only problems
form,
the
discussion
treated
is the
crudest
must
much
connection
in
forces
the
at
the
although
of
straightforward
deal a
its
in
be
most to
which,
and
can
The
the
employed
are
waterworks
nature
whole
one,
nature
have
of
subject
The
the
quantities
are
the
in
used.
and
walls
as
pressure,
while
is
masonry,
particularly
commonly
more
retaining
still
water more
earthworks,
with
structures
or
used
is
expression
of
such
to
of
generally
of
the
teaches the
on
us
inner
the
force, P,
will
the
point
O,
the
being
wall, W,
equal
acting
at
to a
distance
from
H^
O, tends
is obtained
and
wall
the
In
conditions becomes
we
the
combine
the
two
W
find
their
resultant, then
the
and
of
base
the
of
line
the
cut
middle
Fig. 131,
to
ABCD
let
represent of
cross-section should
noted
be
of the
wall.
In
this
A=Cross-sectional
t(;=weight =
depth
that, in
As
lbs.
shown
of material
the
deal
130.
problems
out
with
1-ft.
length
"
of wall
of wall
in reservoir
acting at by
let
case
Then =Aw
working
always
area
of water
Fig.
a
dam.
the
retaining walls, we
A
joints, it
the
at
other
action
must
within
Referring
on
certain
of its width.
third
It
never
such
be
must
resultant
the
must
turning. over-
P
between
relationship the
point
of
restrictions.
and
that
point
pose im-
P
W
this
stresses
forces
and
the
on
stabilityand
to
necessary
just equals Wxff,
just be
ensure
regarding
certain
If
to
of
condition
The
PxH
practice,however,
reached, and,
be
then
steady by
wall
the
moment.
when
would
keep
to
resistingthe overturning balance
219
WALLS
RETAINING
in sq.
ft.,
in lbs. per
cubic
ft.,
in ft.
W=Axlxw;. the
C.G. of the
triangle GHC,
section. the
pressure
exerted from
by
the
water
on
surface
the
at
zero
the
wall
to
maximum
C.G.
X
acts
pressure
at
parallelogramof forces,
B
A
CK=^
where
point K,
a
the aid of the
With
at the bottom.
A2 lbs.
=31-2 total
a
gradually increases,
P=Axlx|x62-4.
.-.
This
STATICS
GRAPHIC
ELEMENTARY
220
find
the
resultant
of P
and
W.
Trisect DC
all the
F, and
and
ditions con-
necessary
of
of
the
line
the
resultant
the
middle
of the
stability if
fulfilled
be
will
base
the
E
in
R
of
action
(R) third
cuts
(EF)
base.
It should, however, be
noted
cases
Fig. 131.
above
not
of universal
Example. the
base
the outer
conditions Determine
1
has
the
dam^
masonry
and
face
many
practice
where
the
resultant
falls
outside
middle
third,
the so
that
conditions,
is
application. A
"
in
occur
rule, although giving ideal
the
at
that
ft. 8
a
water
ins,
wide
batter of 1 rises
graphically if the
ft highy is
8
at
in
to
wall
the
is
jt
top
of
safe
wide
top, while
Under
8.
the
5
certain the
under
tvall. these
Take
conditions.
221
WALLS
RETAINING
weight of
the
lbs.
150
as
masonry
cvbic ft
per
P=31-2xA2=31-2x8x8, lbs.
=1995 Note face
this
that
force
normally
acts
the
to
inner
AB.
W==(^-+^)xSxm Find
of
equal
ac
It will be
ad.
third,
middle
lbs. wall
the
R
that
06
scale, and
ab
the
cuts
wall
the
intersect
to
parallelogram
the
that
P
point O, in
and
probably
a,
equal join the
outside
base
may
W.
represent
to
lbs.,to
1995
to
seen
so
of
action
the
in
section
vertical
a
Complete
lbs.
4000
to
4000
line of
the off
=
1200,
X
O, draw
and, through
Mark
3-33
C.G.
the
Produce
=
not
be
safe. solution of
The
for earth
retaining walls than
of the
earth
the shows
a
the
on
like
section
top and
other
to
assume
a
level
shown
of
flush
plane, such by
the
by the
line the
with of
a
the
as
CE, and
"p is
the
being
level
Earth,
nature, will be found when
The
tipped
slope
inclination
p, is termed
termed
earth
which
Fig. 133
of the wall.
slope
C.G.
of
account
wall.
the
top
similar
definite
angle
angle
of
back
culties diffi-
more
of the thrust
retainingwall,the
a
certain
chieflyon
magnitude
the
on
materials a
measured while
exerts
case,
of stability
the
presents
pressure
preceding
the
uncertainty
the
problems dealing with
the
the
assumed of the
natural
angle of
on
to
is
line, slope,
repose.
222
GRAPHIC
ELEMENTARY
Obviously,none CE
have
can
retain than
of the
any
its natural the
earth
eflfect on
to
the
slope without
friction
of
its
own
ig the angle of friction for
STATICS
the
right
the line
of
it is able
wall, since
assistance
any
to
other
particles.The angle p the earth composing the and
mass,
ledge know-
our
of
mechanics
teaches
that
us
a
earth, particle of lying on this plane, will just be on the point of slipping It is only down. the triangular portion of
earth, BCE, the
which
wall
is
required to support, and the problem is, mutKiuPiu^uiuM B
find
to
force
horizontal
of earth
mass on
the
of this
132.
the many that
years due
to
Rankine's an
has
found
most
Professor
of
problem,
theory
and
which
country
for is
Raukine.
Theory."
examination
advanced
the solution
in this
favour
exerts
theories
been
towards Fig.
this
wall.
Various have
what
out
Rankine's
the
theory
conditions
is based
on
influencingthe
224
ELEMENTARY
fact that the
GRAPHIC
earth
the
lying
slide
down
wall.
It
the
in
due
the
to
fact, that
obtained which
is
This show
consider
A
"
the wall
and
is 45".
Damp
ft.and
masonry
170
134
being equal The
shows
prism,
whose
14
120)
wall
the
plane
this
method,
a
the
plane OF.
a
angle BCE.
the
To
of rupture. will
we
now
This
ft.
lbs.
=
weight, W, of
if fulfilled
=
to
calling
W^
in the
the
the
(?"^)
14
the have
we
Now,
of the X
angle of cubic
of
170
=
point 0^
weight W^
=
of the
(Jx5*75
C.G. of the
calculate
wall, thus 8330
BDK,
mately approxi-
find the and
BDK
angle
measure
point O,
length X
whether
bisector
the
found
lbs.
required
lbs. per
120
of
cubic ft.
is BDE,
4825
1 ft.
Determine
vxill.
triangle BDE,inthe
Hence,
ft.
5
clay which
of damp
DE,
be
section
vxill is
arrangement,
Draw
is
the top, the hack
at
hank
U)s. per
will
BE
ft high,
14
weighs
day
the
section, ABDC,
W
of
C.G. of the
length
X
of
45".
to
the
5*75
X
bisects
of stabilityare
repose
find
down
OF
ft.wide
2
the top
the conditions
and
to slide
as
the pressure
flush with
Fig.
than
is
being perpendicular.
to sustain
is
less
moment
retaining wall,
the base
at
ia much
turning over-
simple example.
a
Example. wide
the
the
that
however,
to
overturn
overturning
application of
the
to
tend
and,
that
is known
plane
slope,i.e.,
triangular portion BCF,
tends
situated
so
tend
so
maximum
BCF
when
natural
portion BCE
smaller
the
the
(Fig.133),will
shown,
effect of the
that
and
plane
been
has
above
BCE
triangular portion
STATICS
lbs.
"
'
the
Now, Coulomb's
theory
between the
first to
have
we
the
earth
force, P, will
takes
no
and
the
act
at
action
Now,
point
a
of W^ if
normally
P intersect
friction had
no
B,
and
the
would
to
=
on
existed
plane have
of
any
friction
wall, hence
the
back
P.
of the
wall,
134.
DM
where
and
earth, BDE, reaction,
M
of
account
back
of
magnitude
the
find
Fig.
and
225
WALLS
RETAINING
of been
iDB. the
The
plane
between
of
the
'rupture,DE, normal
to
lines
of
rupture. mass
of
then
the
DE,
but,
226
ELEMENTARY
since the
of action
45"
with
we
0
by drawing
the
normal
R, and
determine
their
represent
the
the
P,
line of action
line
and
ac
W, and
de=
will
resultant
allowance student on
Rebhann's
to
this
The
shown.
by drawing vertical through W, and
of
the
produce
base
conditions
dg
within of
methods,
exact at
off
=
parallelogram. The the
cut
the
friction
Mark
it in d,
to
to
of
135.
more
is advised
angle
equilibrium,hence
a
action
cut
hence
an
values
Draw
of
found
for earth
in
are
complete
For
fulfilled.
the
be
third, FG,
middle are
of P
plane, as
B's
obtain
can
making
individual
Fig.
the
45", we
line
triangle of forces abc. to
STATICS
is a
to
forces,W^
can
the
friction
of
angle
Hue
three
GRAPHIC
the
consult
back the
the
stability
making
of the
various
wall, books text-
subject. Method.
"
It
might
be
advantageous
to
RETAINING
indicate used
for
many
construction
and
seems
to
and
in
of
than
the
top
of
by
the
line
BEG.
semicircle,
and
and
radius
BE,
to
AD.
Make
FK
draw
FG
parallel
join
GK.
Then
centre
FGK
resultant
=
of
the P
and
with be
of
line W the
split
point
a
describe
right
at
is
to
to
F, and
in
equal
FGK
BAD
angles
BC
cut
slope
FG
and
termed
the
ft.,
sq. in
earth
lbs. per
cubic
wall
on
in
ft., lbs.
ft.
per
of
action
of
up
into shown
to
P
\
the
BA,
parallel
be
now
aid
lbs.
P=(Axlxti;)
equal
may
as
to
length.
BL
off
in
pressure
Then Mark
DE
triangle
of
weight
te;=
P
of
area
=
the
triangle.
pressure A
the
being
angle
an
B
With
135
line
construct
draw
Fig.
natural
which
on
D
BC.
Let
The
from
to
earth
A
rises
case,
wall.
BC,
At
equal
2^,
the
AC
wall,
this
in
theory,
practice.
retaining
a
engineers.
quite satisfactory
are
actual
which,
earth,
indicated
a
of
been
has
Coulomb's
on
which
results with
section the
higher is
is based
agreement a
level
give
which
Continental
by
years
Rebhann's
shows
construction
graphical
one
227
WALLS
and to
combined
in
horizontal the
force
the in
parallelogram its
through
of and
triangle
L
natural the
draw
slope.
usual
'forces. vertical above.
way P
can
ponents, com-
EDINBURiiH
LIMITED
COLSTONS
PRINTERS
LIST
A
OF
BOOKS
PUBLISHED
WHITTAKER 2, White
A
Catalogua
oompleto will
books
"
St., Paternoster
Hart
be
BY
sent
giving
London,
Square,
full details
free
post
CO.,
of
the
E.C.
following
application.
on
s.
Practical
H.
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Survey
Engineers, Alexander, F.
Allsop,
J. O., and Analysis J. R.
into Work Steel
F.
net
Work net
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