A refrigerator is to remove heat from the cooled space at a rate of 300 kj/min to maintain its temperature at 288c. if the air surrounding the refrigerator is at 258c, determine the minimum power input

asked Jul 14, 2019 95.6k views

1 vote

6.3k points

Please log in or register to add a comment.

3 votes

efficiency of refrigerator is given as

$\eta = (T_2)/(T_1 - T_2) = (Q_2)/(W)$

here we know that

T_2 = 288

T_1 = 258

Q_2 = 300 kJ/min

now from above formula

(300)/(W) = (288)/(288 - 258)

(300)/(W) = (288)/(30)

W = 31.25 kJ/min

W = 520.8 W

so its work done is 520.8 W

Mish answered Jul 20, 2019

by Mish

5.7k points

Welcome to QAmmunity.org, where you can ask questions and receive answers from other members of our community.

6.2m questions

8.2m answers