Physics for Scientists and Engineers With Modern Physics
Physics for Scientists and Engineers With Modern Physics
9th Edition
ISBN: 9781133953982
Author: SERWAY, Raymond A./
Publisher: Cengage Learning
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Chapter 5, Problem 64P

Three objects are connected on a table as shown in Figure P5.31. The coefficient of kinetic friction between the block of mass m2 and the table is 0.350. The objects have masses of m1 = 4.00 kg, m2 = 1.00 kg, and m3 = 2.00 kg, and the pulleys are frictionless. (a) Draw a free-body diagram of each object. (b) Determine the acceleration of each object, including its direction. (c) Determine the tensions in the two cords. What If? (d) If the tabletop were smooth, would the tensions increase, decrease, or remain the same? Explain.

Figure P5.31

Chapter 5, Problem 64P, Three objects are connected on a table as shown in Figure P5.31. The coefficient of kinetic friction

(a)

Expert Solution
Check Mark
To determine

To draw: The free body diagram of each object.

Answer to Problem 64P

Therefore, the free body diagrams of each object are shown in figure I.

Explanation of Solution

Given information: The mass of block 1 is 4.00kg , the mass of block 2 is 1.00kg , the mass of block 3 is 2.00kg and the coefficient of friction between mass and table is 0.350 .

The free body diagram of each of the block is given blow.

Physics for Scientists and Engineers With Modern Physics, Chapter 5, Problem 64P

Figure I

Conclusion:

Therefore, the free body diagrams of each object are shown in figure I.

(b)

Expert Solution
Check Mark
To determine

The acceleration of each object including its direction.

Answer to Problem 64P

The acceleration of each object including its direction is 2.31m/s2 down for m1 , left for m2 and up for m3 .

Explanation of Solution

Given information:

The mass of block 1 is 4.00kg , the mass of block 2 is 1.00kg , the mass of block 3 is 2.00kg and the coefficient of kinetic friction between mass and table is 0.350 .

Consider a is the positive magnitude of the acceleration aj^ of m1 , of the acceleration ai^ of m2 and of the acceleration +aj^ of m3 .

The force equation for block 1 is,

Fy=mayT12m1g=m1am1a=T12+m1g

  • T12 is the tension.
  • m1 is the mass of block 1 .
  • g is the acceleration due to gravity.

Substitute 4.00kg for m1 and 9.8m/s2 for g in above equation.

(4.00kg)a=T12+(4.00kg)(9.8m/s2)

(4.00kg)a=T12+39.2N (I)

The force equation for block 2 for horizontal direction is,

Fx=maxT12+μkn+T23=m2a

  • μk is the coefficient of kinetic friction.
  • n is the normal reaction.
  • m2 is the mass of block 2 .
  • T23 is the tension in the string.

The force equation for vertical direction is,

Fy=maynm2g=0n=m2g

  • g is the acceleration due to gravity.

Substitute m2g for n in above equation.

T12+μkm2g+T23=m2a

Substitute 1.00kg for m2 , 0.350 for μk and 9.8m/s2 for g in above equation.

T12+(0.350)(1.00kg)(9.8m/s2)+T23=(1.00kg)a(1.00kg)a=T12(0.350)(9.80N)T23 (II)

The force equation for block 3 is,

Fy=mayT23m3g=m3a

  • m3 is the mass of block 3 .

Substitute 2.00kg for m3 and 9.8m/s2 for g in above equation.

T23(2.00kg)(9.8m/s2)=(2.00kg)a(2.00kg)a=T23(19.6N) (III)

Now, add the above equation (I), (II) and (III) then,

39.2N3.43N19.6N=(7.00kg)aa=2.31m/s2

Conclusion:

Therefore, the acceleration of each object including its direction is 2.31m/s2 down for m1 , left for m2 and up for m3 .

(c)

Expert Solution
Check Mark
To determine

The tension in the two cords.

Answer to Problem 64P

The tension in the first cord is 30.0N and the tension in the second cord is 24.2N .

Explanation of Solution

Given information:

The mass of block 1 is 4.00kg , the mass of block 2 is 1.00kg , the mass of block 3 is 2.00kg and the coefficient of kinetic friction between mass and table is 0.350 .

Recall the equation (I).

(4.00kg)a=T12+39.2N

Substitute 2.31m/s2 for a in above equation.

(4.00kg)(2.31m/s2)=T12+39.2NT12=30.0N

Recall the equation (III).

(2.00kg)a=T23(19.6N)

Substitute 2.31m/s2 for a in above equation.

(2.00kg)(2.31m/s2)=T23(19.6N)T23=24.2N

Conclusion:

Therefore, the tension in the first cord is 30.0N and the tension in the second cord is 24.2N .

(d)

Expert Solution
Check Mark
To determine

To explain: The tension is increases, decreases or remains same if the table top is smooth.

Answer to Problem 64P

Therefore, the tension in first cord T12 decreases and tension in the second cord T23 increases.

Explanation of Solution

Given information:

The mass of block 1 is 4.00kg , the mass of block 2 is 1.00kg , the mass of block 3 is 2.00kg and the coefficient of kinetic friction between mass and table is 0.350 .

If the tabletop is smooth, the friction disappears and the coefficient of the kinetic friction becomes zero.

Consider the following equation from the above calculations.

m1a=T12+m1gT12+μkm2g+T23=m2aT23m3g=m3a

Then, the expression from the above three equation is,

m1a+m2a+m3a=T12+m1g+T12+μkm2gT23+T23m3ga=(m1+μkm2m3)gm1+m2+m3

Substitute 4.00kg for m1 , 1.00kg for m2 , 0 for μk , 2.00kg for m3 and 9.8m/s2 for g in above expression.

a=(4.00kg+(0)(1.00kg)2.00kg)(9.8m/s2)4.00kg+1.00kg+2.00kg=(2.00kg)(9.8m/s2)7.00kg=2.80m/s2

Recall the equation (I).

(4.00kg)a=T12+39.2N

Substitute 2.80m/s2 for a in above equation.

(4.00kg)(2.80m/s2)=T12+39.2NT12=28.0N

Recall the equation (III).

(2.00kg)a=T23(19.6N)

Substitute 2.80m/s2 for a in above equation.

(2.00kg)(2.80m/s2)=T23(19.6N)T23=25.2N

Compare these tensions with the tensions in the cord due to a=2.31m/s2 .

The tensions in the cord for a=2.31m/s2 is,

T12=30.0NT23=24.2N

The tensions in the cord for μk=0 is,

T12=28.0NT23=25.2N

The tensions are changed when the tabletop is smooth. So the tension in first cord T12 decreases and tension in the second cord T23 increases.

Conclusion:

Therefore, the tension in first cord T12 decreases and tension in the second cord T23 increases.

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