Connect 1 Semester Access Card for Vector Mechanics for Engineers: Statics and Dynamics
Connect 1 Semester Access Card for Vector Mechanics for Engineers: Statics and Dynamics
11th Edition
ISBN: 9781259639272
Author: Ferdinand P. Beer, E. Russell Johnston Jr., David Mazurek, Phillip J. Cornwell, Brian Self
Publisher: McGraw-Hill Education
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Chapter 13.1, Problem 13.23P

(a)

To determine

The velocity of block B (vB) after block A has moved 2 m.

(a)

Expert Solution
Check Mark

Answer to Problem 13.23P

The velocity of block B (vB) after block A has moved 2 m is 1.218m/s()_.

Explanation of Solution

Given information:

The mass of the block A (mA) is 30 kg.

The mass of the block B (mB) is 25 kg.

The force (P) acting at block A is 250 N.

The coefficient of static friction between block A and horizontal surface (μs) is 0.25.

The coefficient of kinetic friction between block A and horizontal surface (μk) is 0.20.

Calculation:

Show the system with the distance as in Figure (1).

Connect 1 Semester Access Card for Vector Mechanics for Engineers: Statics and Dynamics, Chapter 13.1, Problem 13.23P , additional homework tip  1

When the block A moves one unit left, block B moves 3 units upwards,

Write the expression for the constraint of the cable from Figure (1) as follows:

xA+3yB=0ΔxA+3ΔyB=0vA+3vB=0

Here, xA and yB are the distances, ΔxA and ΔyB are change in distances, vA is the velocity of block A and vB is the velocity of block B.

Show the free body diagram of block B with all the forces acting on it as in Figure (2).

Connect 1 Semester Access Card for Vector Mechanics for Engineers: Statics and Dynamics, Chapter 13.1, Problem 13.23P , additional homework tip  2

Check the equilibrium position of the blocks to verify whether the blocks move.

From Figure (2), for block B to remain in equilibrium, the net resultant force acting on the block B should be zero.

Net forceon B=03FmBg=0F=mBg3

Here, g is the acceleration due to gravity and F is the tension in the cable.

Substitute 25 kg for mB, and 9.81 m/s2 for g.

F=(25kg)(9.81m/s2)3=81.75N

Show the free body diagram of block B with all the forces acting on it as in Figure (3).

Connect 1 Semester Access Card for Vector Mechanics for Engineers: Statics and Dynamics, Chapter 13.1, Problem 13.23P , additional homework tip  3

Calculate the net forces acting on the block A in Y-axis direction using the relation:

NAmAg=0NA=mAg

Here, NA is the normal reaction acting on block A.

Substitute 30 kg for mA and 9.81m/s2 for g.

NA=(30kg)(9.81m/s2)=294.3N

Calculate the net forces acting on block A in X-axis direction using the relation:

(Net force)X=PF

Substitute 250 N for P and 81.75 N for F.

(Net force)X=250N81.75N=168.25N

Calculate the available static friction acting on block A (FS) using the formula:

FS=μsNA

Substitute 0.25 for μs and 294.3 N for NA.

FS=(0.25)(294.3N)=73.57N

Since (Net force)X>FS, the blocks move. Hence, the kinetic friction comes into action.

Show the free body diagram of block B with kinetic frictional force acting on it as in Figure (4).

Connect 1 Semester Access Card for Vector Mechanics for Engineers: Statics and Dynamics, Chapter 13.1, Problem 13.23P , additional homework tip  4

Consider the block A.

The kinetic energy of block A (T1)A is zero as it rest initially.

The expression for the final kinetic energy of the block A [(T2)A] after A has moved through a distance of 2 m as follows;

(T2)A=12mAvA2

Write the expression for the kinetic frictional force acting on the block A (FA) during sliding as follows:

FA=μkNA

Write the expression for the work done by the block A [(U12)A] in moving through a distance of ΔxA as follows:

(U12)A=(PFAF)(ΔxA)

Apply the principle of work and energy to block A.

Work and energy principle states that kinetic energy of the particle at a displaced point can be obtained by adding the initial kinetic energy and the work done on the particle during its displacement.

Write the expression for the work and energy principle as follows:

(T1)A+(U12)A=(T2)A

Substitute 0 for (T1)A, (PFAF)(ΔxA) for (U12)A, and 12mAvA2 for (T2)A.

(T1)A+(U12)A=(T2)A0+(PFAF)(ΔxA)=12mAvA2(PFAF)(ΔxA)=12mAvA2

Substitute 250 N for P, 30 kg for mA, 2 m for ΔxA, 58.86 N for FA, and 3vB for vA.

(25058.86F)(2)=12(30)(3vB)2382.282F=135vB2 (1)

Consider the block B.

The kinetic energy of block B (T1)B is zero as it rest initially.

The expression for the final kinetic energy [(T2)B] of the block B after A has moved through a distance of 2 m.

(T2)B=12mBvB2

Write the expression the work done by the block B in moving through a distance of ΔyB as follows:

(U12)B={(Net force acting on B)(distance through which B moves)}=(3FWB)(ΔyB)

Apply the principle of work and energy to the block B.

According to the work and energy principle,

(T1)B+(U12)B=(T2)B

Substitute 0 for (T1)B, 12mBvB2 for (T2)B, and (3FWB)(ΔyB) for (U12)B.

(T1)B+(U12)B=(T2)B0+(3FWB)(ΔyB)=12mBvB2(3FmBg)(ΔyB)=12mBvB2

Substitute 25 kg for mB, 9.81 m/s2 for g, and 2/3 for ΔyB.

(3F(25kg)(9.81m/s2))(23)=12(25kg)vB2(3F245.25)(23)=12.5vB22F163.5=12.5vB2 (2)

Add equation (2) and equation (4) to eliminate F.

382.28163.5=147.5vB2vB2=218.78147.5vB=1.4833vB=1.218m/s()

Therefore, the velocity of block B (vB) after block A has moved 2 m is 1.218m/s()_.

(b)

To determine

The tension (F) in the cable.

(b)

Expert Solution
Check Mark

Answer to Problem 13.23P

The tension (F) in the cable is 91.0N_.

Explanation of Solution

Given information:

The mass of the block A (mA) is 30 kg.

The mass of the block B (mB) is 25 kg.

The force (P) acting at block A is 250 N.

The coefficient of static friction between block A and horizontal surface (μs) is 0.25.

The coefficient of kinetic friction between block A and horizontal surface (μk) is 0.20.

Calculation:

Calculate the tension (F) in the cable:

Substitute 1.218m/s for vB in equation (2).

2F163.5=12.5vB22F163.5=(12.5)(1.218)22F=18.541+163.5F=91.0N

Therefore, the tension (F) in the cable is 91.0N_.

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Chapter 13 Solutions

Connect 1 Semester Access Card for Vector Mechanics for Engineers: Statics and Dynamics

Ch. 13.1 - A 1.4-kg model rocket is launched vertically from...Ch. 13.1 - Packages are thrown down an incline at A with a...Ch. 13.1 - Prob. 13.12PCh. 13.1 - Boxes are transported by a conveyor belt with a...Ch. 13.1 - Boxes are transported by a conveyor belt with a...Ch. 13.1 - A 1200-kg trailer is hitched to a 1400-kg car. The...Ch. 13.1 - Prob. 13.16PCh. 13.1 - Prob. 13.17PCh. 13.1 - The subway train shown is traveling at a speed of...Ch. 13.1 - Prob. 13.19PCh. 13.1 - The system shown is at rest when a constant 30-lb...Ch. 13.1 - Car B is towing car A at a constant speed of 10...Ch. 13.1 - Prob. 13.22PCh. 13.1 - Prob. 13.23PCh. 13.1 - Two blocks A and B, of mass 4 kg and 5 kg,...Ch. 13.1 - Prob. 13.25PCh. 13.1 - A 3-kg block rests on top of a 2-kg block...Ch. 13.1 - Solve Prob. 13.26, assuming that the 2-kg block is...Ch. 13.1 - Prob. 13.28PCh. 13.1 - A 7.5-lb collar is released from rest in the...Ch. 13.1 - A 10-kg block is attached to spring A and...Ch. 13.1 - A 5-kg collar A is at rest on top of, but not...Ch. 13.1 - Prob. 13.32PCh. 13.1 - Prob. 13.33PCh. 13.1 - Two types of energy-absorbing fenders designed to...Ch. 13.1 - Prob. 13.35PCh. 13.1 - Prob. 13.36PCh. 13.1 - Prob. 13.37PCh. 13.1 - Prob. 13.38PCh. 13.1 - Prob. 13.39PCh. 13.1 - The sphere at A is given a downward velocity v0...Ch. 13.1 - A bag is gently pushed off the top of a wall at A...Ch. 13.1 - 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