Physics for Scientists and Engineers: Foundations and Connections
Physics for Scientists and Engineers: Foundations and Connections
1st Edition
ISBN: 9781337026345
Author: Katz
Publisher: Cengage
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Chapter 5, Problem 79PQ

Two boxes with masses m1 = 4.00 kg and m2 = 10.0 kg are attached by a massless cord passing over a frictionless pulley as shown in Figure P5.79. The incline is frictionless, and θ = 30.0°.

  1. a. Draw a free-body diagram for each of the boxes.
  2. b. What is the magnitude of the acceleration of the boxes?
  3. c. What is the tension in the cord connecting the boxes?
  4. d. What is the speed of each of the boxes 3.00 s after the system is released from rest?

Chapter 5, Problem 79PQ, Two boxes with masses m1 = 4.00 kg and m2 = 10.0 kg are attached by a massless cord passing over a

FIGURE P5.79

(a)

Expert Solution
Check Mark
To determine

Draw the free body diagram for each of the boxes.

Answer to Problem 79PQ

The free body diagram for each of the boxes is given below.

Explanation of Solution

The free body diagram each of the boxes is given below.

Conclusion:

Physics for Scientists and Engineers: Foundations and Connections, Chapter 5, Problem 79PQ , additional homework tip  1               Physics for Scientists and Engineers: Foundations and Connections, Chapter 5, Problem 79PQ , additional homework tip  2

(b)

Expert Solution
Check Mark
To determine

Find the acceleration of the boxes.

Answer to Problem 79PQ

The acceleration of the boxes is 0.701 m/s2.

Explanation of Solution

Applying Newton’s laws,

    ΣFx=m2gsinθFT=m2a                                                                (I)

Here, Fx is the force, FT is the tension force, m2 is the mass of block 2, a is the acceleration, θ is the angle between horizontal and incline and g is the acceleration due to gravity.

    ΣFy=FTm1g=m1aFT=m1(g+a)                                                        (II)

Here, m1 is the mass of block 1.

Substitute equation II in equation I.

    m2gsinθm1(g+a)=m2a

  a(m1+m2)=g(m2sinθm1)a=g(m2sinθm1)m1+m2                                                            (III)

Conclusion:

Substitute 9.81 m/s2 for g, 4.00 kg for m1, 10.0 kg for m2 and 30.0° for θ in equation III.

    a=(9.81 m/s2)[(10.0 kg)sin(30.0°)4.00 kg](4.00 kg+10.0 kg)=0.701 m/s2

Therefore, the acceleration of the boxes is 0.701 m/s2.

(c)

Expert Solution
Check Mark
To determine

Find the tension in the cord connecting the boxes.

Answer to Problem 79PQ

The tension in the cord connecting the boxes is 42.0 N

Explanation of Solution

Use the equation II to find the tension in the rope connecting the two sleds.

Conclusion:

Substitute 9.81 m/s2 for g, 4.00 kg for m1 and 0.701 m/s2 for a in equation I.

    FT=(4.00 kg)[9.81 m/s2+0.701 m/s2]=42.0 N

Therefore, the tension in the rope connecting the two sleds is 50.6 N.

(d)

Expert Solution
Check Mark
To determine

Find the speed of the boxes 3.00 s after the system is released from rest.

Answer to Problem 79PQ

The speed of the boxes 3.00 s after the system is released from rest is 2.10 m/s

Explanation of Solution

As the boxes are at rest initially, write the equation of final speed.

  vf=at                                                                       (IV)

Here, vf is the final speed, t is the time and a is the acceleration.

Conclusion:

Substitute 0.701 m/s2 for a and 3.00 s for t  in equation IV.

    vf=(0.701 m/s2)(3.00 s)=2.10 m/s

Therefore, the speed of the boxes 3.00 s after the system is released from rest is 2.10 m/s.

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Chapter 5 Solutions

Physics for Scientists and Engineers: Foundations and Connections

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