FUND OF THERMAL-FLUID SCIENCES W/CONNEC
FUND OF THERMAL-FLUID SCIENCES W/CONNEC
5th Edition
ISBN: 9781260277739
Author: CENGEL
Publisher: MCG
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Chapter 7, Problem 123RQ
To determine

The maximum money saved by using the lake water instead of outside air as the heat source.

Expert Solution & Answer
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Explanation of Solution

Given:

The lower temperature of the reversible heat pump (TL)Air is 0°C.

The lower temperature of the reversible heat pump (TL)Lake is 25°C.

The higher temperature of the reversible heat pump (TH) is 25°C.

The rate of heat reject by the heat pump (Q˙H) is 140,000kJ/h.

The cost of electricity is $0.105/kWh.

The number of operating hours is 100 hours.

Calculation:

Initially calculate for outside air:

Calculate coefficient of performance for the reversible heat pump.

  COPHP,rev=11((TL)air/TH)        (I)

  COPHP,rev=11(0°C/25°C)=11(0+273K/25+273K)=11.92

Calculate the minimum power input required to operate the heat pump.

  W˙in,min=Q˙HCOPHP,rev        (II)

  W˙in,min=(140,000kJ/h)(11.92)=(140,000kJ/h)×(1kW3600kJ/h)(11.92)=38.88889kW11.92=3.2624kW

Calculate the cost of the energy in a heat pump (Costair).

  Cost=[(W˙in,min)×(number of hours operates by heat pump)×(cost of electricity)]        (III)

  Costair=(3.2624kW)×(100h)×($0.105/kWh)=$34.255$34.26

Similarly,

For lake water:

Substitute (TL)Lake=10°C and TH=25°C in Equation (I).

  COPHP,rev=11(10°C/25°C)=11(10+273K/25+273K)=19.86619.87

Substitute Q˙H=140,000kJ/h and COPHP,rev=19.87 in Equation (II).

  W˙in,min=(140,000kJ/h)(19.87)=(140,000kJ/h)×(1kW3600kJ/h)(19.87)=38.88889kW19.87=1.957kW

Substitute W˙in,min=1.957kW, 100 h for number of hours operates by heat pump, and $0.105/kWh for cost of electricity in Equation (III).

  Costlake=(1.9571kW)×(100h)×($0.105/kWh)=$20.549$20.55

Calculate the maximum money saved by using the lake water (Costlake) instead of outside air as the heat source.

  Moneysaved=CostairCostlake        (IV)

  Moneysaved=($34.26)($20.55)=$13.71$13.7

Thus, the maximum money saved by using the lake water instead of outside air as the heat source is $13.7_.

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Chapter 7 Solutions

FUND OF THERMAL-FLUID SCIENCES W/CONNEC

Ch. 7 - Does a heat engine that has a thermal efficiency...Ch. 7 - Prob. 12PCh. 7 - Are the efficiencies of all the work-producing...Ch. 7 - Consider a pan of water being heated (a) by...Ch. 7 - A steam power plant receives heat from a furnace...Ch. 7 - Prob. 16PCh. 7 - Prob. 17PCh. 7 - The thermal efficiency of a general heat engine is...Ch. 7 - Prob. 19PCh. 7 - Prob. 20PCh. 7 - Prob. 21PCh. 7 - Prob. 22PCh. 7 - Prob. 23PCh. 7 - In 2001, the United States produced 51 percent of...Ch. 7 - Prob. 25PCh. 7 - Prob. 26PCh. 7 - Prob. 27PCh. 7 - Prob. 28PCh. 7 - Prob. 29PCh. 7 - Prob. 30PCh. 7 - Prob. 31PCh. 7 - Prob. 32PCh. 7 - Prob. 33PCh. 7 - Prob. 34PCh. 7 - Prob. 35PCh. 7 - What is the Clausius expression of the second law...Ch. 7 - Show that the Kelvin–Planck and the Clausius...Ch. 7 - Prob. 38PCh. 7 - Prob. 39PCh. 7 - A residential heat pump has a coefficient of...Ch. 7 - Prob. 41PCh. 7 - Prob. 42PCh. 7 - Prob. 43PCh. 7 - A household refrigerator that has a power input of...Ch. 7 - Prob. 45PCh. 7 - Prob. 46PCh. 7 - Prob. 47PCh. 7 - Prob. 48PCh. 7 - A household refrigerator runs one-fourth of the...Ch. 7 - A heat pump used to heat a house runs about...Ch. 7 - Prob. 51PCh. 7 - Consider a building whose annual air-conditioning...Ch. 7 - Prob. 53PCh. 7 - Prob. 54PCh. 7 - Prob. 55PCh. 7 - Prob. 56PCh. 7 - Prob. 57PCh. 7 - Why does a nonquasi-equilibrium compression...Ch. 7 - Prob. 59PCh. 7 - Prob. 60PCh. 7 - Prob. 61PCh. 7 - Prob. 62PCh. 7 - Prob. 63PCh. 7 - Prob. 64PCh. 7 - Prob. 65PCh. 7 - Prob. 66PCh. 7 - Prob. 67PCh. 7 - Is there any way to increase the efficiency of a...Ch. 7 - Prob. 69PCh. 7 - Prob. 70PCh. 7 - Prob. 71PCh. 7 - Prob. 72PCh. 7 - Prob. 73PCh. 7 - Prob. 74PCh. 7 - Prob. 75PCh. 7 - An inventor claims to have devised a cyclical...Ch. 7 - A heat engine receives heat from a heat source at...Ch. 7 - In tropical climates, the water near the surface...Ch. 7 - A well-established way of power generation...Ch. 7 - Prob. 80PCh. 7 - Prob. 81PCh. 7 - Prob. 82PCh. 7 - Prob. 83PCh. 7 - Prob. 84PCh. 7 - Prob. 85PCh. 7 - Prob. 86PCh. 7 - Prob. 87PCh. 7 - Prob. 88PCh. 7 - Prob. 89PCh. 7 - Prob. 90PCh. 7 - Prob. 91PCh. 7 - Prob. 92PCh. 7 - Prob. 93PCh. 7 - Prob. 94PCh. 7 - Prob. 95PCh. 7 - Prob. 96PCh. 7 - Prob. 97PCh. 7 - Prob. 98PCh. 7 - Prob. 99PCh. 7 - Prob. 100PCh. 7 - Prob. 101PCh. 7 - Prob. 102PCh. 7 - Prob. 103PCh. 7 - Prob. 104PCh. 7 - Prob. 105PCh. 7 - Prob. 106RQCh. 7 - Prob. 107RQCh. 7 - Prob. 108RQCh. 7 - Prob. 109RQCh. 7 - Prob. 110RQCh. 7 - Prob. 111RQCh. 7 - Prob. 112RQCh. 7 - Prob. 114RQCh. 7 - Prob. 115RQCh. 7 - Prob. 117RQCh. 7 - Prob. 118RQCh. 7 - Prob. 119RQCh. 7 - Prob. 120RQCh. 7 - Prob. 121RQCh. 7 - Prob. 122RQCh. 7 - Prob. 123RQCh. 7 - Prob. 124RQCh. 7 - Prob. 125RQCh. 7 - Prob. 127RQCh. 7 - The drinking water needs of a production facility...Ch. 7 - Prob. 129RQCh. 7 - Prob. 131RQCh. 7 - Prob. 132RQCh. 7 - Prob. 133RQCh. 7 - Prob. 134RQCh. 7 - Prob. 136RQCh. 7 - Prob. 137RQ
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