Physics
Physics
3rd Edition
ISBN: 9781259233616
Author: GIAMBATTISTA
Publisher: MCG
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Chapter 15, Problem 97P

(a)

To determine

The maximum possible efficiency of the plant.

(a)

Expert Solution
Check Mark

Answer to Problem 97P

The maximum possible efficiency of the plant is 39.6%.

Explanation of Solution

Write an expression for the maximum possible efficiency of the plant.

er=1TCTH (I)

Here, er is the maximum possible efficiency of the plant, TC is the temperature of cold reservoir and TH is the temperature of hot reservoir.

Conclusion:

Substitute 323K for TC and 535K for TH in equation (I) to find er.

er=1323K535K=(0.396)(100%)=39.6%

Thus, the maximum possible efficiency of the plant is 39.6%.

(b)

To determine

The rate at which the heat removed.

(b)

Expert Solution
Check Mark

Answer to Problem 97P

The rate at which the heat removed is 4.98×108W.

Explanation of Solution

Write an expression for the heat removed.

QCΔt=WneteΔtWnetΔt=WnetΔt(1e1) (II)

Here, QC is the heat removed, Δt is the length of interval, Wnet is the net work done and e is the efficiency.

Conclusion:

Substitute 1.23×108W for Wnet/Δt, 50.0%er for e and 39.6% for er in equation (II) to find QC/Δt.

QC/Δt=(1.23×108W)(1(50.0%)(er)1)=(1.23×108W)(1(50.0%)(39.6%)1)=(1.23×108W)(1(50.0%)(1100%)(39.6%)(1100%)1)(1.23×108W)(1(0.50)(0.396)1)=4.98×108W

Thus, the rate at which the heat removed is 4.98×108W.

(c)

To determine

The maximum possible rate at which water can be pumped uphill.

(c)

Expert Solution
Check Mark

Answer to Problem 97P

The maximum possible rate at which water can be pumped uphill is 33.0m3/s.

Explanation of Solution

Write an expression for the rate of work done.

WnetΔt=mghΔt=(m/Δt)gh (III)

Here, m is the mass, g is the acceleration due to gravity and h is the height.

Rewrite the equation (III) to find m/Δt.

(m/Δt)=(Wnet/Δt)gh (IV)

Conclusion:

Substitute 1.23×108W for Wnet/Δt, 9.80m/s2 for g and 380m for h in equation (IV) to find m/Δt.

(m/Δt)=(1.23×108W)(9.80m/s2)(380m)=1.23×108W3724m2/s2=3.30×104kg/s

Thus, the maximum possible rate at which water can be pumped uphill is 33.0m3/s.

Thus, calculate the volume flow rate.

(V/Δt)=(m/Δt)(1m31000kg)=33.0m3/s

Here, (V/Δt) is the volume flow rate.

Thus, the maximum possible rate at which water can be pumped uphill is 33.0m3/s.

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Chapter 15 Solutions

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