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CE 102: Engineering CE 102: Engineering Mechanics
Principle of Virtual WorkPrinciple of Virtual Work
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Work of a ForceWork of a ForcerdF=dU
= work of the force corresponding to F
p gthe displacement rd
dU = F ds cosα
α= 0, dU =+ F ds α= π
2, dU = 0α= π , dU =− F ds
2
dU = Wdy
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Work of a CoupleWork of a CoupleSmall displacement of a rigid body:Small displacement of a rigid body:
• translation to A’B’
t ti f B’ b t A’ t B”
ddFdFW
• rotation of B’ about A’ to B”
rdθF=dsF=rdF
rd+rdF+rdF=W
22
211
dθM
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Principle of Virtual Workp• Imagine the small virtual displacement of particle which
is acted upon by several forces.• The corresponding virtual work,
δR
rδF+F+F=rδF+rδF+rδF=δU
321321
rδR
Principle of Virtual Work:
• If a particle is in equilibrium, the total virtual work of forces acting on the particle is zero for any virtual displacement.
• If a rigid body is in equilibrium, the total virtual work of external forces acting on the body is zero for any virtual displacement of the bodyvirtual displacement of the body.
• If a system of connected rigid bodies remains connected during the virtual displacement, only the work of the g p yexternal forces need be considered.
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Different types of forcesDifferent types of forces• Forces that do work are called
active force.• Reactive and internal forces do Reactive and internal forces do
not do any work.• Virtual displacements are to be • Virtual displacements are to be
given carefully so that the active forces are only the active forces are only the known forces and the forces we are interested in obtainingare interested in obtaining
• Similar to FBD we draw active f di (AFD)force diagram (AFD).
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Virtual Work for a rigid bodyVirtual Work for a rigid body
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Work of a ForceWork of a ForceForces which do no work:• reaction at a frictionless pin due to rotation of a body p y
around the pin • reaction at a frictionless surface due to motion of a
body along the surfacebody along the surface• weight of a body with cg moving horizontally• friction force on a wheel moving without slippingfriction force on a wheel moving without slipping
Sum of work done by several forces may be zero:
• bodies connected by a frictionless pin
• bodies connected by an inextensible cord• internal forces holding together parts of a rigid body
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Degrees of FreedomDegrees of Freedom• DOF in this context is the total number • DOF in this context is the total number
of independent coordinates required to specify the complete location of every specify the complete location of every member of the structure.F VW h d i hi ill • For VW method in this course we will use only 1-DOF systems.1 DOF 2 DOF
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To summarizeTo summarizeP i i l f i t l k• Principle of virtual work– The virtual work done by external active
forces on an ideal mechanical system in forces on an ideal mechanical system in equilibrium is zero for any all virtual displacements consistent with the constraints.constraints.
• Ideal system:All surfaces joints etc are frictionless – All surfaces, joints etc. are frictionless.
– We will deal with ideal system in this course.• Consistent with constraints:Consistent with constraints:
– The virtual displacement should be such that they should not do allow the non-active forces to do any
kwork.
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Why principle of Virtual WorkWhy principle of Virtual WorkF l h i ( ill l • For complex mechanisms (we will solve some problems) we do not need to dismember the systemsystem.
• We obtain the active unknown force in one shot without bothering about the reactiveshot without bothering about the reactiveforces.
• Such type of analysis will be a stepping stone • Such type of analysis will be a stepping stone to VW analysis using deformations when you teach Solid Mechanics Structural Mechanics teach Solid Mechanics, Structural Mechanics etc. not to mention powerful Approximate methods like the Finite Element Method.
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Problem 1Problem 1• Assuming frictionless contacts,
determine the magnitude of P for gequilibrium
This problem will beThis problem will be referred to as the Ladder problem
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Problem 2Problem 2• The pressure p driving a piston of diameter
100 mm is 1 N/mm2. At the configuration shown, what weight W will the system hold if friction is neglected
This along with the laddergproblem forms a framework for many other problems
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Problem 3(Shames)
• A hydraulic lift platform for loading trucks supports a weight 2W.Only one side of the system has been shown; the other side isid ti l Wh t f F h ld th h d li li d id tidentical. What force F should the hydraulic cylinder provide tosupport the weight W. Assume that the hydraulic device isinclined at a clockwise of α with respect to the horizontal. Neglectf i i hfriction everywhere.
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Problem 4 MK5Problem 4 MK5• A power operated loading platform designed for the back of a truck is • A power-operated loading platform designed for the back of a truck is
shown. The position of the platform is controlled by the hydraulic cylinder, which applies force at C. The links are pivoted to the truck frame at A, B, and F. Determine the force P supplied by the cylinder in
d t t th l tf i th iti h Th f th order to support the platform in the position shown. The mass of the platform and the links may be neglected compared with that of the 250 kg crate with center of mass at G.
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Problem 5 BJ8Problem 5 BJ8• A f P i li d t lid C h Th t t f th• A force P is applied to slider C as shown. The constant of the
spring is 1.6 kN/m, and the spring is un-stretched when memberBD is horizontal. Neglecting friction between the slider and theguide rod and knowing that BC = BD = 150 mm, determine theg g ,magnitude of P so that θ = 25 deg when the system is inequilibrium.
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A small modifiction:A small modifiction:I have used Q for theresisting force and Pfor the spring force.p g
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Problem 6Problem 6D t i Q f ilib i f th t • Determine Q for equilibrium for the system shown. The pulleys are frictionless and have masses W1 and W2. The sliding body has mass masses W1 and W2. The sliding body has mass W3.
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Problem 7Problem 7• Find the force Q required to maintain
the system in equilibrium. y q
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Problem 8Problem 8• Determine the couple M which must be p
applied at O in order to support the mechanism in the position θ = 30o. The
f th di k t C b OA d b BC masses of the disk at C, bar OA, and bar BC are mo, m, and 2m respectively.
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Problem 9Problem 9• Determine force in member CD by using Determine force in member CD by using
the method of virtual work.
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Tutorial Problems
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Problem 1 BJ8
Th b li k h i d b• The two-bar linkage shown is supported by apin and bracket at B and a collar at D thatslides freely on a vertical rod Determine theslides freely on a vertical rod. Determine theforce P required to maintain the equilibrium ofthe linkage.g
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Problem 2Problem 2• Find reaction at E by using method of
virtual work
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Problem 3 MK5Problem 3 MK5• Th l ti f th l tf f t d b th f • The elevation of the platform of mass m supported by the four
identical links is controlled by the hydraulic cylinders AB and ACwhich are pivoted at point A. Determine the compression P in each of the cylinders required to support the platform for the y q pp pspecified angle θ
Meriam and KraigeMeriam and Kraige
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Problem 4 MK2
• Obtain the clamping force Q developed for the pliers when the handle force is Pthe pliers when the handle force is P.
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Problem 5 MK5Problem 5 MK5
• The claw of the remote action actuator• The claw of the remote-action actuatordevelops a clamping force C as a result ofthe tension P in the control rod Express Cthe tension P in the control rod. Express Cin terms of P for the configuration shownwhere the jaws are parallel.where the jaws are parallel.
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Problem 6 ShamesProblem 6 Shames• Find the force delivered
at C in the horizontal direction to crush the direction to crush the rock. Pressure p1= 100 M-Pa and p2= 60 M-Pa ( d b (measured above atmospheric pressure). The diameters of The diameters of pistons are 100mm each. Neglect the weight of the rods weight of the rods.
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Problem 7 BJ10Problem 7 BJ10D i h i l f • Determine the vertical movement of joint C, if the member FG is lengthened by 50 mm
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