EP ENGR.MECH.-MOD.MASTERING ACCESS
EP ENGR.MECH.-MOD.MASTERING ACCESS
15th Edition
ISBN: 9780134867267
Author: HIBBELER
Publisher: PEARSON CO
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Chapter 11, Problem 1FP

Determine the required magnitude of force P to maintain equilibrium of the linkage at θ = 60°. Each link has a mass of 20 kg.

Chapter 11, Problem 1FP, Determine the required magnitude of force P to maintain equilibrium of the linkage at  = 60. Each

Expert Solution & Answer
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To determine

The required magnitude of force P to maintain equilibrium.

Answer to Problem 1FP

The required magnitude of force P to maintain equilibrium is 56.6N_.

Explanation of Solution

Given information:

The mass of each link (m) is 20 kg.

The given angle θ is 60°.

Show the free body diagram of the forces acting on the link as in Figure (1).

EP ENGR.MECH.-MOD.MASTERING ACCESS, Chapter 11, Problem 1FP

Observation:

The weight W and the horizontal component of P do positive work, when the position coordinates (xCandyG) undergo a positive virtual displacement.

Virtual displacement:

Write the position coordinate about x axis at point C.

xC=(lAB+lBC)cosθ (I)

Here, the length of the link AB is lAB and the length of the link BC is lBC.

Write the position coordinate about y axis about the center of the link.

yG=lAB2sinθ (II)

Determine the weight of the link W.

W=mg (III)

Here, the acceleration due to gravity is g.

Virtual work equation:

Write the virtual work equation to determine the magnitude of force P.

δU=02WδyG+PδxC=0 (IV)

Here, the angle of force FAC is θ.

Conclusion:

Differentiate Equation (I) with respect to θ.

δxCδθ=(lAB+lBC)cosθδxC=(lAB+lBC)sinθδθ (V)

Substitute 1.5 m for lAB and 1.5 m for lBC in Equation (V).

δxC=(1.5+1.5)sinθδθ=3sinθδθ

Differentiate Equation (II) with respect to θ.

δyGδθ=lAB2sinθδyG=lAB2cosθδθ

Substitute 1.5 m for lAB.

δyG=1.52cosθδθ=0.75cosθδθ

Substitute 20 kg for m and 9.81m/s2 for g in Equation (III).

W=20×9.81=196.2kgms2×1N1kgms2=196.2N

Substitute 196.2 N for W, 0.75cosθδθ for δyG, 60° for θ, and (3sinθδθ) for δxC in Equation (IV).

2(196.2)(0.75cosθδθ)+P(3sinθδθ)=0δθ[(294.3cos60°)3Psin60°]=0

Here, the value of δθ0.

Modify the Equation,

(294.3cos60°)3Psin60°=0147.15=2.598P147.152.598=PP=56.6N

Thus, the required magnitude of force P to maintain equilibrium is 56.6N_.

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