Physics
Physics
3rd Edition
ISBN: 9780073512150
Author: Alan Giambattista, Betty Richardson, Robert C. Richardson Dr.
Publisher: McGraw-Hill Education
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Chapter 8, Problem 110P

(a)

To determine

The radius of the flywheel.

(a)

Expert Solution
Check Mark

Answer to Problem 110P

The radius of the flywheel is 3.54 m.

Explanation of Solution

Write the expression for the rotational inertia of a uniform disk.

I=12MR2

Here, I is the rotational inertia of the flywheel, M is the mass of the flywheel and R is its radius

Rewrite the above equation for R.

R=2IM (I)

Conclusion:

Given that the rotational inertia of the flywheel is 4.55×106 kgm2 and its mass is 7.27×105 kg.

Substitute 4.55×106 kgm2 for I and 7.27×105 kg for M in equation (I) to find the value of R.

R=2(4.55×106 kgm2)7.27×105 kg=3.54 m

Therefore, the radius of the flywheel is 3.54 m.

(b)

To determine

The radius of the flywheel if it is a hollow cylinder with the mass concentrated at the rim.

(b)

Expert Solution
Check Mark

Answer to Problem 110P

The radius of the flywheel if it is a hollow cylinder with the mass concentrated at the rim is 2.50 m.

Explanation of Solution

Write the expression for the rotational inertia of a hollow cylinder.

I=MR2

Rewrite the above equation for R.

R=IM (II)

Conclusion:

Substitute 4.55×106 kgm2 for I and 7.27×105 kg for M in equation (II) to find the value of R.

R=(4.55×106 kgm2)7.27×105 kg=2.50 m

Therefore, the radius of the flywheel if it is a hollow cylinder with the mass concentrated at the rim is 2.50 m.

(c)

To determine

The average power supplied by the flywheel during 5.00 s.

(c)

Expert Solution
Check Mark

Answer to Problem 110P

The average power supplied by the flywheel during 5.00 s is 4.27×108 W.

Explanation of Solution

Write the expression for the rate at which the energy of the flywheel is made to change.

Pav=WΔt (III)

Here, Pav is the rate at which the energy of the flywheel is made to change, W is the work done and Δt is the time interval

Write the work energy theorem.

W=ΔK

Here, ΔK is the change in kinetic energy of the flywheel

Put the above equation in equation (III).

Pav=ΔKΔt (IV)

Write the expression for ΔK.

ΔK=12Iωf212Iωi2=12I(ωf2ωi2)

Here, ωf is the final angular speed of the flywheel and ωi is the initial angular speed of the flywheel

Put the above equation in equation (IV).

Pav=12I(ωf2ωi2)Δt=I2Δt(ωf2ωi2)

The average power supplied by the flywheel is Pav.

Pav=I2Δt(ωi2ωf2) (V)

Conclusion:

Given that the initial angular speed of the flywheel is 386 rev/min and the final angular speed is 252 rev/min.

Substitute 4.55×106 kgm2 for I. 5.00 s for Δt , 386 rev/min for ωi and 252 rev/min for ωf in equation (V) to find the value of power supplied.

Pav=4.55×106 kgm22(5.00 s)((386 rev(2π rad1 rev)/min(60 s1 min))2(252 rev(2π rad1 rev)/min(60 s1 min))2)=4.55×106 kgm22(5.00 s)[(40.42 rad/s)2(26.39 rad/s)2]=4.27×108 W

Therefore, the average power supplied by the flywheel during 5.00 s is 4.27×108 W.

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Chapter 8 Solutions

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