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VECTOR MECHANICS FOR ENGINEERS:
STATICS
Eighth Edition
Ferdinand P. BeerE. Russell Johnston, Jr.
Lecture Notes:J. Walt OlerTexas Tech University
CHAPTER
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Rigid Bodies: Equivalent Systems of Forces
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EighthEdition
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ContentsIntroduction
External and Internal Forces
Principle of Transmissibility: Equivalent Forces
Vector Products of Two Vectors
Moment of a Force About a Point
Varignon’s Theorem
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ContentsRectangular Components of the Moment of a Force
Sample Problem 3.1
Scalar Product of Two Vectors
Scalar Product of Two Vectors: Applications
Mixed Triple Product of Three Vectors
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ContentsMoment of a Force About a Given Axis
Sample Problem 3.5
Moment of a Couple
Addition of Couples
Couples Can Be Represented By Vectors
Resolution of a Force Into a Force at Oand a Couple
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ContentsSample Problem 3.6
System of Forces: Reduction to a Force and a Couple
Further Reduction of a System of Forces
Sample Problem 3.8
Sample Problem 3.10
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Introduction
•Treatment of a body as a single particle is not always possible. In general, the size of the body and the specific points of application of the forces must be considered.
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Introduction
•Most bodies in elementary mechanics are assumed to be rigid, i.e., the actual deformations are small and do not affect the conditions of equilibrium or motion of the body.
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Introduction: Objectives •Current chapter describes the effect of forces exerted on a rigid body and how to replace a given system of forces with a simpler equivalent system.- moment of a force about a point- moment of a force about an axis- moment due to a couple
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Introduction
•Any system of forces acting on a rigid body can be replaced by an equivalent system consisting of one force acting at a given point and one couple.
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External and Internal Forces•Forces acting on rigid bodies are divided into two groups:- External forces
- Internal forces
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External and Internal Forces•External forces are shown in a free-body diagram.
•If unopposed, each external force can impart a motion of translation or rotation, or both.
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Principle of Transmissibility: Equivalent Forces
•Principle of Transmissibility -Conditions of equilibrium or motion are not affected by transmitting a force along its line of action.
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Principle of Transmissibility: Equivalent Forces
•NOTE: F and F’ are equivalent forces.
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Principle of Transmissibility: Equivalent Forces
•Moving the point of application of the force F to the rear bumper does not affect the motion or the other forces acting on the truck.
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Principle of Transmissibility: Equivalent Forces
•Principle of transmissibility may not always apply in determining internal forces and deformations.
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Vector classifications:
-Fixed or bound vectors have well defined points of application that cannot be changed
-Free vectors may be freely moved in space
-Sliding vectors may be applied anywhere along their line of action
without affecting an analysis.
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Moment of a Force About a Point
•A force vector is defined by its magnitude and direction. Its effect on the rigid body also depends on it point of application.•The moment of F about O is defined as FrMO ×=
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Moment of a Force About a Point
•The moment vector MO is perpendicular to the plane containing O and the force F.
FrMO ×=
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Moment of a Force About a Point
•Magnitude of MO measures the tendency of the force to cause rotation of the body about an axis along MO.
The sense of the moment may be determined by the right-hand rule.
FdrFMO == θsin
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A human hand can comfortably apply a torque (torsional moment) of 1.5 Nm. For a bottle lid of diameter 4 cm how much uniformly distributed force (N/m) do we apply do we apply to open the lid?
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Ans : f(2 * 22/7 * 2*2) = 150f=3 N/cm. Total force =f(2*22/7*2) = 40 N or 4 kg.
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Vector Mechanics for Engineers: Statics
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How much torque in turning the steering wheel of the car?
How much torque in tightening the nut of the car wheel?
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Varignon’s Theorem
•The moment about a give point O of the resultant of several concurrent forces is equal to the sum of the moments of the various moments about the same point O.( ) +×+×=++× 2121 FrFrFFr
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Varignon’s Theorem
•Varigon’s Theorem makes it possible to replace the direct determination of the moment of a force Fby the moments of two or more component forces of F.
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Rectangular Components of the Moment of a Force
The moment of Fabout O,
kFjFiFFkzjyixrFrM
zyx
O++=
++=×= ,
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Rectangular Components of the Moment of a Force
( ) ( ) ( )kyFxFjxFzFizFyF
FFFzyxkji
kMjMiMM
xyzxyz
zyx
zyxO
−+−+−=
=
++=
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Rectangular Components of the Moment of a Force
The moment of Fabout B,
FrM BAB ×= /
( ) ( ) ( )kFjFiFF
kzzjyyixx
rrr
zyx
BABABA
BABA
++=
−+−+−=
−=/
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Rectangular Components of the Moment of a Force
( ) ( ) ( )zyx
BABABAB
FFFzzyyxx
kjiM −−−=
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Moment of a Force About a Point
•Any force F’ that has the same magnitude and direction as F, is equivalent if it also has the same line of action and therefore, produces the same moment.
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Sample Problem 3.1
A 100-N vertical force is applied to the end of a lever which is attached to a shaft at O.
Determine:
a)moment about O,
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Sample Problem 3.1
b) horizontal force at A which creates the same moment,
c) smallest force at A which produces the same moment,
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Sample Problem 3.1
d) location for a 240-N vertical force to produce the same moment,
a)whether any of the forces from b, c, and d is equivalent to the original force.
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Sample Problem 3.1
a) Moment about O is equal to the product of the force and the perpendicular distance between the line of action of the force and O. Since the force tends to rotate the lever clockwise, the moment vector is into the plane of the paper.
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Sample Problem 3.1
( )( )( )cm 12N 100
m 1260cosm24=
=°==
O
O
Md
FdM
m N 1200 ⋅=OM
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Sample Problem 3.1
c) Horizontal force at Athat produces the same moment,
( )
( )
m 8.20m N 1200
m 8.20m N 1200
m 8.2060sinm 24
⋅=
=⋅=
=°=
F
FFdM
d
O
N7.57=F
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Sample Problem 3.1
c) The smallest force A to produce the same moment occurs when the perpendicular distance is a maximum or when F is perpendicular to OA.
( )
m42m N 1200
m 42m N 1200⋅
=
=⋅=
F
FFdM O
N50=F
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Sample Problem 3.1
d) To determine the point of application of a 240 lb force to produce the same moment,
( )
cm 5cos60
cm 5N 402
m N 1200N 240m N 1200
=°
=⋅
=
=⋅=
OB
d
dFdM O
m 10=OB
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Sample Problem 3.1e) Although each of the forces in parts
b), c), and d) produces the same moment as the 100 N force, none are of the same magnitude and sense, or on the same line of action. None of the forces is equivalent to the 100 N force.
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Mixed Triple Product of Three Vectors
•Mixed triple product of three vectors,
( ) resultscalar =ו QPS
•The six mixed triple products formed from S, P, and Q have equal magnitudes but not the same sign,
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Mixed Triple Product of Three Vectors
( ) ( ) ( )( )
zyx
zyx
zyx
xyyxz
zxxzyyzzyx
QQQPPPSSS
QPQPS
QPQPSQPQPSQPS
=
−+
−+−=ו•Evaluating the mixed triple product,
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Moment about an axis
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Moment of a Force About a Given Axis
•Moment MO of a force F applied at the point A about a point O,
FrM O ×=•Scalar moment MOL about an axis OLis the projection of the moment vector MO onto the axis,
( )FrMM OOL ו=•= λλ
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Moment of a Force About a Given Axis
•Moments of F about the coordinate axes,
xyz
zxy
yzx
yFxFM
xFzFM
zFyFM
−=
−=
−=
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Moment of a Force About a Given Axis•Moment of a force about an arbitrary axis,
( )BABA
BA
BBL
rrr
Fr
MM
−=
ו=
•=
λ
λ
•The result is independent of the point B along the given axis.
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Sample Problem 3.4
The rectangular plate is supported by the brackets at A and B and by a wire CD. Knowing that the tension in the wire is 200 N, determine the moment about A of the force exerted by the wire at C.
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Sample Problem 3.4
SOLUTION:
The moment MA of the force F exerted by the wire is obtained by evaluating the vector product,FrM ACA ×=
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Sample Problem 3.4
SOLUTION:
( ) ( )0.3 m 0.08 mC A C Ar r r i k= − = +
FrM ACA ×=
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Sample Problem 3.4
( )
( ) ( ) ( ) ( )
( ) ( ) ( )
200 N
0.3 m 0.24 m 0.32 m200 N
0.5 m120 N 96 N 128 N
C D
C D
rF F
r
i j k
i j k
λ= =
− + −=
= − + −
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Sample Problem 3.4
1289612008.003.0
−−=
kjiM A
( ) ( ) ( )kjiMA mN 8.82mN 8.82mN 68.7 ⋅+⋅+⋅−=
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Determine the moment about z-axis due to force at C.
( ) ( ) ( )kjiMA mN 8.82mN 8.82mN 68.7 ⋅+⋅+⋅−=
MA . k = 28.8 Nm
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Sample Problem 3.5
a)about Ab)about the edge AB
and
A cube is acted on by a force P as shown. Determine the moment of P
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Sample Problem 3.5
c)about the diagonal AG of the cube.
d)Determine the perpendicular distance between AG and FC.
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Sample Problem 3.5
•Moment of Pabout A,
( )( ) ( )( ) ( )jiPjiaM
jiPjiPP
jiajaiar
PrM
A
AF
AFA
+×−=
+=+=
−=−=
×=
2
222
( )( )kjiaPM A ++= 2
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Sample Problem 3.5
•Moment of Pabout AB,
( )( )kjiaPi
MiM AAB
++•=
•=
2
2aPM AB =
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Sample Problem 3.5
•Moment of P about the diagonal AG,
( )
( )
( ) ( )
( )1116
2312
31
3
−−=
++•−−=
++=
−−=−−
==
•=
aP
kjiaPkjiM
kjiaPM
kjia
kajaiarr
MM
AG
A
GA
GA
AAG
λ
λ
6aPM AG −=
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Sample Problem 3.5
•Perpendicular distance between AG and FC,
( ) ( ) ( )
0
11063
12
=
+−=−−•−=•PkjikjPP λ
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Moment of a Couple•Two forces F and -Fhaving the same magnitude, parallel lines of action, and opposite sense are said to form a couple.
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Moment of a Couple•Moment of the couple,
( )( )
FdrFMFr
FrrFrFrM
BA
BA
==×=
×−=
−×+×=
θsin
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Moment of a Couple•The moment vector of the couple is independent of the choice of the origin of the coordinate axes, i.e., it is a free vectorthat can be applied at any point with the same effect.
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Equivalent couples
3 - 68
If the wheel was connected to the shaft at a point other than the centre, the wheel would still turn as 12 Nm is a couple and a free vector.
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•
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Moment of a Couple
Two couples will have equal moments if
2211 dFdF =• the two couples lie in parallel planes, and
•the two couples have the same sense or the tendency to cause rotation in the same direction.
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Addition of Couples
•Consider two intersecting planes P1 and P2 with each containing a couple
222
111
planein planein PFrMPFrM
×=
×=
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Addition of Couples
•Resultants of the vectors also form a couple
( )21 FFrRrM +×=×=
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Addition of Couples
•By Varigon’s theorem
21
21
MMFrFrM
+=
×+×=
•Sum of two couples is also a couple that is equal to the vector sum of the two couples
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Couples Can Be Represented by Vectors
•Couple vectors may be resolved into component vectors.
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Resultant of couples (free vector)
3 - 74
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Vector Mechanics for Engineers: Statics
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The meshed gears are subjected to the couple moments shown. Determine the magnitude of the resultant couple moment and specify its coordinate direction angles.
Presenter
Presentation Notes
This is Problem 4-94 of Statics book, page no. 159. Figure is taken from 04PPT-08 (27 October 2002)
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{ }
{ }
{ }{ }
1
2
1 2
50 N.m20cos 20sin 30 20cos 20cos30
20sin 20 N.m= 9.397 16.276 6.840 N.m
9.397 16.276 6.840 50 N.m= 9.397 16.276 56.840 N.m
R
M kM i j
ki j k
M M Mi j k ki j k
=
= − −+
− − +
= +
= − − + +
− − +
Page 78
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Vector Mechanics for Engineers: Statics
EighthEdition
( ) ( ) ( )
( )( )( )
2 2
1 9.37959.867
1 16.27659.867
1 56.84059.867
9.379 16.276 + 56.840 N.m59.867 N.m=59.9 N.m
cos 99.0
cos 106.0
cos 18.3
RM
α
β
ν
− −
− −
−
= − + −
=
= =
= =
= =
Presenter
Presentation Notes
This is Problem 4-94 of Statics book, page no. 159. Figure is taken from 04PPT-08 (27 October 2002)
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Sample Problem 3.6
Determine the components of the single couple equivalent to the couples shown.
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Sample Problem 3.6
•Compute the sum of the moments of the four forces about an arbitrary single point. D is a good choice as only the forces at C and E contribute to the moment about D.
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Sample Problem 3.6
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Sample Problem 3.6
( ) ( )( ) ( )[ ] ( )ikj
kjMM D
N 20m 12m 9
N 30m 18
−×−+
−×==
( ) ( )( )k
jiM
mN 180
mN240mN 540
⋅+
⋅+⋅−=
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Introduction
•Any force acting on a rigid body can be replaced by an equivalent system consisting of one force acting at a given point and one couple.
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Resolution of a Force Into a Force at O and a Couple
•Force vector F can not be simply moved to O without modifying its action on the body.
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Resolution of a Force Into a Force at O and a Couple
•The three forces may be replaced by an equivalent force vector and couple vector, i.e, a force-couple system.
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Resolution of a Force Into a Force at O and a Couple
•Attaching equal and opposite force vectors at O produces no net effect on the body.
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Resolution of a Force Into a Force at O and a Couple
•Moving F from A to a different point O’
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Resolution of a Force Into a Force at O and a Couple
•Moving F from A to a different point O’ requires the addition of a different couple vector MO’
FrM O ×′='
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Resolution of a Force Into a Force at O and a Couple
•The moments of F about O and O’ are related,
( )FsM
FsFrFsrFrM
O
O
×+=
×+×=×+=×= ''
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Resolution of a Force Into a Force at O and a Couple
•Moving the force-couple system from O to O’ requires the addition of the moment of the force at O about O’.
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Sample Problem 3.4
The rectangular plate is supported by the brackets at A and B and by a wire CD. Knowing that the tension in the wire is 200 N, determine the equivalent force at A.
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( ) ( ) ( )120 N 96 N 128 NRF i j k= − + −
( ) ( ) ( )kjiMA mN 8.82mN 8.82mN 68.7 ⋅+⋅+⋅−=
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Equivalent force system at B ?
MB= MA +BA x FR = MA +80 k x FR
( ) ( ) ( )120 N 96 N 128 NRF i j k= − + −
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Introduction
•Any system of forces acting on a rigid body can be replaced by an equivalent system consisting of one force acting at a given point and one couple.
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System of Forces: Reduction to a Force and Couple
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System of Forces: Reduction to a Force and Couple
•A system of forces may be replaced by a collection of force-couple systems acting a given point O
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System of Forces: Reduction to a Force and Couple
•The force and couple vectors may be combined into a resultant force vector and a resultant couple vector,
( )∑∑ ×== FrMFR RO
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System of Forces: Reduction to a Force and Couple
•The force-couple system at O may be moved to O’ with the addition of the moment of R about O’ ,
RsMM RO
RO ×+='
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System of Forces: Reduction to a Force and Couple
•Two systems of forces are equivalent if they can be reduced to the same force-couple system.
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Page 104
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Special cases
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Further Reduction of a System of Forces
•If the resultant force and couple at O are mutually perpendicular, they can be replaced by a single force acting along a new line of action.
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Further Reduction of a System of Forces•The resultant force-couple system for a system of forces will be mutually perpendicular
•1) the forces are concurrent, 2) the forces are coplanar, 3) the forces are parallel.
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Concurrent forces
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Further Reduction of a System of Forces
•System of coplanar forces is reduced to a force-couple system
that is mutually perpendicular.
ROMR and
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Further Reduction of a System of Forces
•System can be reduced to a single force by moving the line of action of until its moment about O becomes R
OM
R
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Further Reduction of a System of Forces
•In terms of rectangular coordinates,R
y x OxR yR M− =
x ,y coordinates of point of application
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Further Reduction of a System of Forces
Rx OyR M− =
Ry OxR M=
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Sample Problem 3.8For the beam, reduce the system of forces shown to (a) an equivalent force-couple system at A, (b) an equivalent force couple system at B, and (c) a single force or resultant.Note: Since the support reactions are not included, the given system will not maintain the beam in equilibrium.
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Sample Problem 3.8
SOLUTION:
a)Compute the resultant force for the forces shown and the resultant couple for the moments of the forces about A.
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Sample Problem 3.8
b)Find an equivalent force-couple system at B based on the force-couple system at A.
c)Determine the point of application for the resultant force such that its moment about A is equal to the resultant couple at A.
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Sample Problem 3.8
a)Compute the resultant force and the resultant couple at A.
( ) ( ) ( ) ( ) jjjjFR
N 250N 100N 600N 150 −+−=
=∑
( ) jR N600−=
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( )( ) ( ) ( ) ( )
( ) ( )jijiji
FrM RA
2508.41008.26006.1
−×+
×+−×=
×= ∑
( )kM RA mN 1880 ⋅−=
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Sample Problem 3.8
b)Find an equivalent force-couple system at B based on the force-couple system at A.
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Sample Problem 3.8
( ) ( ) ( )( ) ( )kk
jik
RrMM ABRA
RB
mN 2880mN 1880
N 600m 8.4mN 1880
⋅+⋅−=
−×−+⋅−=
×+=
( )kM RB mN 1000 ⋅+=
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Sample Problem 3.8
The couple at B is equal to the moment about B of the force-couple system found at A.
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Sample Problem 3.8
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RAM
Resultant of given system of forces is equal to R, and its point of application must besuch that the moment of R about A is equal to .
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( )jR N600−=
( ) ( )( ) ( )kk
kjiMRr
m.N1800N600m.N1800N600
−=−−−=−×
=×
xx
RA
m133.x=
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-(600 N )j
A B
Single Force or Resultant.
The resultant of the given system of forces is equal to R, and its point of application must be such that the moment of R about Ais equal to . We write
and conclude that X =3.13 m. Thus, the single
force equivalent to the given system is defined as
R = 600 N x = 3.13 m
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Sample Problem 3.10
Three cables are attached to the bracket as shown. Replace the forces with an equivalent force-couple system at A.
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Sample Problem 3.10
SOLUTION:
•Determine the relative position vectors for the points of application of the cable forces with respect to A.
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Sample Problem 3.10•Resolve the forces into rectangular components.
•Compute the equivalent force,
∑= FR
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Sample Problem 3.10
•Compute the equivalent couple,
( )∑ ×= FrM RA
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Sample Problem 3.10SOLUTION:
•Determine the relative position vectors with respect to A.
( )( )( )m 100.0100.0
m 050.0075.0
m 050.0075.0
jir
kir
kir
AD
AC
AB
−=
−=
+=
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Sample Problem 3.10•Resolve the forces into rectangular components.
( )
( )N 200600300
289.0857.0429.0
1755015075
N 700
kjiF
kji
kjirr
F
B
BE
BE
B
+−=
+−=
+−==
=
λ
λ
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Sample Problem 3.10
( )( )( )N 1039600
30cos60cosN 1200ji
jiFD
+=
+=
( )( )( )N 707707
45cos45cosN 1000ki
jiFC
−=−=
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Sample Problem 3.10•Compute the equivalent force,
( )( )( )k
ji
FR
707200
1039600600707300
−+
+−+
++=
= ∑
( )N 5074391607 kjiR −+=
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Sample Problem 3.10
•Compute the equivalent couple,
( )
0.075 0 0.050 30 45300 600 200
RA
B A B
M r F
i j kr F i k
= ×
× = = −−
∑
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( )
kkji
Fr
jkji
Fr
kikji
Fr
FrM
DAD
cAC
BAB
RA
9.163010396000100.0100.0
68.177070707050.00075.0
4530200600300050.00075.0
=−=×
=−−=×
−=−
=×
×=∑
kjiMRA 9.11868.1730 ++=
Page 134
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Pauli Effect in Action
3 - 134
It was a standing joke among Wolfgang Pauli's colleagues that the famed theoretical physicist should be kept as far away from experimental equipment as humanly possible. His mere presence in a laboratory, it was said, would cause something to go wrong: the power would fail,
Page 135
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Pauli Effect in Action
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vacuum tubes would suddenly leak, instruments would break or malfunction. Indeed, such was the frequency of Pauli-related incidents that the strange phenomenon came to be known as the 'Pauli Effect'.
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One day, a group of Pauli's mischievous colleagues set up a practical joke to show the strange effect in action: an elaborate contraption was designed and constructed to bring a chandelier crashing down the moment Pauli arrived at a large reception. Pauli duly appeared on schedule and the Pauli effect was demonstrated, though not as the mischievous crew had planned:
Page 137
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One day, some important experimental equipment in Professor James Frank's laboratory at the Physics Institute at the University of Gottingen unexpectedly blew up for no apparent reason. Moreover, Pauli, who was on his way to Denmark, had not even entered the building.
no sooner was the mechanism activated than a pulley jammed - and the chandelier did not come down.
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Only later was it discovered that the catastrophe had taken place at the precise moment that the train carrying Pauli from Zurich to Copenhagen had stopped to collect passengers at the Gottingen railroad station
Page 139
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Equivalent force systems: The wrench
3 - 139
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http://www.engin.brown.edu/courses/en3/Notes/Statics/Staticequiv/Staticequiv.htm
This is a good example on how CG shifts due to use of fuel in aircraft.
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Vector Product of Two Vectors
•Concept of the moment of a force about a point is more easily understood through applications of the vector product or cross product.
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Vector Product of Two Vectors
•Vector product of two vectors P and Q is defined as the vector V which satisfies the following conditions:1.Line of action of V is perpendicular to plane containing P and Q.
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Vector Product of Two Vectors
2. Magnitude of V is
3. Direction of V is obtained from the right-hand rule.
θsinQPV =
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Vector Products: Rectangular Components
x y z
x y z
i j kV P P P
Q Q Q=
Page 147
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Moment of a Force About a Point
•Two-dimensional structureshave length and breadth but negligible depth and are subjected to forces contained in the plane of the structure.
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Moment of a Force About a Point
•The plane of the structure contains the point O and the force F. MO, the moment of the force about O is perpendicular to the plane.
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Moment of a Force About a Point
•If the force tends to rotate the structure counter clockwise, the sense of the moment vector is out of the plane of the structure and the magnitude of the moment is positive.
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Moment of a Force About a Point
•If the force tends to rotate the structure clockwise, the sense of the moment vector is into the plane of the structure and the magnitude of the moment is negative.
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Rectangular Components of the Moment of a Force
( ) ( )[ ]
( ) ( ) zBAyBA
ZO
zBAyBAO
FyyFxxMM
kFyyFxxM
−−−==
−−−=
Page 152
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Rectangular Components of the Moment of a Force
For two-dimensional structures,
( )
zy
ZO
zyO
yFxFMM
kyFxFM
−==
−=
Page 153
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Couples Can Be Represented by Vectors
•A couple can be represented by a vector with magnitude and direction equal to the moment of the couple.
•Couple vectors obey the law of addition of vectors.