PHYSICS F/SCI.+ENGRS.,STAND.-W/ACCESS
PHYSICS F/SCI.+ENGRS.,STAND.-W/ACCESS
6th Edition
ISBN: 9781429206099
Author: Tipler
Publisher: MAC HIGHER
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Chapter 5, Problem 118P

(a)

To determine

The acceleration of center of mass of two block cylinder string system.

(a)

Expert Solution
Check Mark

Explanation of Solution

Given:

The mass of cylinder is mc .

Formula used:

Write expression for total force on the system.

  Fcm=F1+F2+Fc

Substitute Macm for Fcm , m1a1 for F1 , m2a2 for F2 and mcac for Fc .

  Macm=m1a1+m2a2+mcac

Substitute m1+m2+m3 for M , a for a1 , a for a2 and 0 for a3 in above expression.

  acm=a(m1m2m1+m2+m3)  .......(1)

Calculation:

Draw free body diagram of blocks of Atwood’s machine.

  PHYSICS F/SCI.+ENGRS.,STAND.-W/ACCESS, Chapter 5, Problem 118P , additional homework tip 1

Write expression for net force in block of mass m2 .

  F2=0

Substitute Tm2gm2a2 for F2 in above expression.

  Tm2gm2a2=0  .......(2)

Write expression for net force in block of mass m1 .

  F1=0

Substitute m1gTm1a1 for F1 in above expression.

  m1gTm1a1=0

Rearrange above expression for T .

  T=m1a1m1g

Substitute m1a1m1g for T in equation (2).

  m1a1m1gm2gm2a2=0

Substitute a for a1 and a for a2 in above expression and solve for a .

  a=m1m2m1+m2g

Substitute m1m2m1+m2g for a in equation (1).

  acm=( m 1 m 2 m 1 + m 2 g)( m 1 m 2 m 1 + m 2 + m 3 )acm= ( m 1 m 2 )2( m 1 + m 2 )( m 1 + m 2 + m 3 )g

Conclusion:

Thus, the acceleration of COM is ( m 1 m 2 )2(m1+m2)(m1+m2+m3)g .

(b)

To determine

The force exerted by the support.

(b)

Expert Solution
Check Mark

Explanation of Solution

Given:

The mass of cylinder is mc .

Formula used:

Write expression for total force on the system.

  Fcm=F1+F2+Fc

Substitute Macm for Fcm , m1a1 for F1 , m2a2 for F2 and mcac for Fc .

  Macm=m1a1+m2a2+mcac

Substitute m1+m2+m3 for M , a for a1 , a for a2 and 0 for a3 in above expression.

  acm=a(m1m2m1+m2+m3)  .......(1)

Write expression for force exerted by the support.

  F=MgMacm  .......(2)

Calculation:

Draw free body diagram of blocks of Atwood’s machine.

  PHYSICS F/SCI.+ENGRS.,STAND.-W/ACCESS, Chapter 5, Problem 118P , additional homework tip 2

Write expression for net force in block of mass m2 .

  F2=0

Substitute Tm2gm2a2 for F2 in above expression.

  Tm2gm2a2=0  .......(3)

Write expression for net force in block of mass m1 .

  F1=0

Substitute m1gTm1a1 for F1 in above expression.

  m1gTm1a1=0

Rearrange above expression for T .

  T=m1a1m1g

Substitute m1a1m1g for T in equation (3).

  m1a1m1gm2gm2a2=0

Substitute a for a1 and a for a2 in above expression and solve for a .

  a=m1m2m1+m2g

Substitute m1m2m1+m2g for a in equation (1).

  acm=( m 1 m 2 m 1 + m 2 g)( m 1 m 2 m 1 + m 2 + m 3 )acm= ( m 1 m 2 )2( m 1 + m 2 )( m 1 + m 2 + m 3 )g

Substitute ( m 1 m 2 )2(m1+m2)(m1+m2+m3)g for acm .

  F=MgM( ( m 1 m 2 )2( m 1 + m 2 )( m 1 + m 2 + m 3 )g)

Substitute m1+m2+m3 for M in above expression and solve.

  F=(4m1m2m1+m2+mc)g

Conclusion:

Thus, force exerted by the support is (4m1m2m1+m2+mc)g .

(c)

To determine

Tension T in the string; to show that F=mcg+2T .

(c)

Expert Solution
Check Mark

Explanation of Solution

Given:

Formula used:

Write expression for total force on the system.

  Fcm=F1+F2+Fc

Substitute Macm for Fcm , m1a1 for F1 , m2a2 for F2 and mcac for Fc .

  Macm=m1a1+m2a2+mcac

Substitute m1+m2+m3 for M , a for a1 , a for a2 and 0 for a3 in above expression.

  acm=a(m1m2m1+m2+m3)  .......(1)

Write expression for force exerted by the support.

  F=MgMacm  .......(2)

Draw free body diagram of blocks of Atwood’s machine.

  PHYSICS F/SCI.+ENGRS.,STAND.-W/ACCESS, Chapter 5, Problem 118P , additional homework tip 3

Write expression for net force in block of mass m2 .

  F2=0

Substitute Tm2gm2a2 for F2 in above expression.

  Tm2gm2a2=0  .......(3)

Write expression for net force in block of mass m1 .

  F1=0

Substitute m1gTm1a1 for F1 in above expression.

  m1gTm1a1=0

Rearrange above expression for T .

  T=m1a1m1g  .......(4)

Substitute m1a1m1g for T in equation (3).

  m1a1m1gm2gm2a2=0

Substitute a for a1 and a for a2 in above expression and solve for a .

  a=m1m2m1+m2g

Substitute m1m2m1+m2g for a1 in equation (4) and solve for T .

  T=2m1m2gm1+m2

Calculation:

Substitute m1m2m1+m2g for a in equation (1).

  acm=( m 1 m 2 m 1 + m 2 g)( m 1 m 2 m 1 + m 2 + m 3 )acm= ( m 1 m 2 )2( m 1 + m 2 )( m 1 + m 2 + m 3 )g

Substitute ( m 1 m 2 )2(m1+m2)(m1+m2+m3)g for acm .

  F=MgM( ( m 1 m 2 )2( m 1 + m 2 )( m 1 + m 2 + m 3 )g)

Substitute m1+m2+m3 for M in above expression and solve.

  F=4m1m2m1+m2g+mcg

Substitute T for 2m1m2gm1+m2 in above expression.

  F=2T+mcg

Conclusion:

Thus, the tension in the string is 2m1m2gm1+m2 .

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PHYSICS F/SCI.+ENGRS.,STAND.-W/ACCESS

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