EBK THERMODYNAMICS: AN ENGINEERING APPR
EBK THERMODYNAMICS: AN ENGINEERING APPR
8th Edition
ISBN: 8220100257056
Author: CENGEL
Publisher: YUZU
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Chapter 6.11, Problem 123RP

A refrigeration system uses a water-cooled condenser for rejecting the waste heat. The system absorbs heat from a space at 25°F at a rate of 21,000 Btu/h. Water enters the condenser at 65°F at a rate of 1.45 lbm/s. The COP of the system is estimated to be 1.9. Determine (a) the power input to the system in kW, (b) the temperature of the water at the exit of the condenser in °F, and (c) the maximum possible COP of the system. The specific heat of water is 1.0 Btu/bm·°F.

(a)

Expert Solution
Check Mark
To determine

The power input of the refrigerator.

Answer to Problem 123RP

The power input of the refrigerator is 3.239kW_.

Explanation of Solution

Determine coefficient of performance to the refrigerator.

COPR=Q˙LW˙inW˙in=Q˙LCOPR (I)

Here, the power consumption of the refrigerator is W˙in, and the heat removal from the cold medium is Q˙L.

Conclusion:

Substitute 21,000Btu/h for Q˙L and 1.9 for C.O.P in Equation (I).

W˙in=21,000Btu/h1.9=21,000Btu/h1.9×(1.055kJ1Btu)×(1h3600s)=3.239kW

Thus, the power input of the refrigerator is 3.239kW_.

(b)

Expert Solution
Check Mark
To determine

The exit temperature of the water.

Answer to Problem 123RP

The exit temperature of the water is 71.14°F_.

Explanation of Solution

Determine rate of heat rejected in the rejected of the refrigerator.

Q˙H=Q˙L+W˙in (II)

Here, the power consumption of the refrigerator is W˙in, and the heat removal from the cold medium is Q˙L.

Determine exit temperature of the water.

Q˙H=m˙cp(T2T1)T2=T1+Q˙Hm˙cp (III)

Here, the mass rate of the water is m˙, the coefficient of pressure is cp, the water enter to the condenser is T1, the exit temperature of the water is T2.

Conclusion:

Substitute 21,000Btu/h for Q˙L and 3.239kW for W˙in in Equation (II).

Q˙H=(21,000Btu/h)+(3.239kW)=(21,000Btu/h)+(3.239kW)×(1Btu1.055kJ)(3600s1h)=32,052.5Btu/h32,053Btu/h

Substitute 65°F for T1, 32,053Btu/h for Q˙H, 1.45lbm/s for m˙, and 1.0Btu/lbm°F for cp in Equation (III).

T2=65°F+32,053Btu/h(1.45lbm/s)×(1.0Btu/lbm°F)=65°F+32,053Btu/h(1.45lbm/s)×(3600s1h)×(1.0Btu/lbm°F)=65°F+6.14°F=71.14°F

Thus, the exit temperature of the water is 71.14°F_.

(c)

Expert Solution
Check Mark
To determine

The maximum possible COP of the refrigerator.

Answer to Problem 123RP

The maximum possible COP of the refrigerator is 11.26_.

Explanation of Solution

Determine the average temperature of the water as source temperature.

TH=T1+T22 (IV)

Determine maximum possible COP of the refrigerator.

COPR=TLTHTL (V)

Here, the system absorb heat from a space is TL.

Conclusion:

Substitute 65°F for T1 and 71.14°F for T2 in Equation (IV).

TH=(65+71.14)°F2=68.07°F

Substitute 25°F for TL and 68.07°F for TH in Equation (V).

COPrev=25°F68.07°F25°F=25°F+46043.07°F=11.26

Thus, the maximum possible COP of the refrigerator is 11.26_.

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Chapter 6 Solutions

EBK THERMODYNAMICS: AN ENGINEERING APPR

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In an effort to conserve energy in a heat-engine...Ch. 6.11 - Prob. 88PCh. 6.11 - Prob. 89PCh. 6.11 - 6–90 During an experiment conducted in a room at...Ch. 6.11 - Prob. 91PCh. 6.11 - An air-conditioning system operating on the...Ch. 6.11 - Prob. 93PCh. 6.11 - Prob. 94PCh. 6.11 - Prob. 95PCh. 6.11 - Prob. 96PCh. 6.11 - 6–97 A heat pump is used to maintain a house at...Ch. 6.11 - Prob. 98PCh. 6.11 - Prob. 99PCh. 6.11 - Prob. 100PCh. 6.11 - A commercial refrigerator with refrigerant-134a as...Ch. 6.11 - Prob. 102PCh. 6.11 - A heat pump is to be used for heating a house in...Ch. 6.11 - A Carnot heat pump is to be used to heat a house...Ch. 6.11 - A Carnot heat engine receives heat from a...Ch. 6.11 - Prob. 106PCh. 6.11 - Prob. 107PCh. 6.11 - Prob. 108PCh. 6.11 - Derive an expression for the COP of a completely...Ch. 6.11 - Prob. 110PCh. 6.11 - Prob. 111PCh. 6.11 - Prob. 112PCh. 6.11 - Prob. 113PCh. 6.11 - Someone proposes that the entire...Ch. 6.11 - Prob. 115PCh. 6.11 - Prob. 116PCh. 6.11 - 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