REFRIGERATION CYCLES 725
dharm
\M-therm\Th14-2.pm5
Solution. Fig. 14.6 shows the working cycle of the refrigerator.
Given : p 2 = 1.0 bar ;
p 1 = 8.0 bar ;
T 3 = 9 + 273 = 282 K ;
T 4 = 29 + 273 = 302 K.
p (bar)
V(m )^3
14
2 3
pV1.35= C
p=8 1
p = 1.0 2
Fig. 14.6
Considering polytropic compression 3-4, we have
T
T
4
3
= p
p
n
1 n
2
(^1) 135 1
8 135
1
F
HG
I
KJ
=F
HG
I
KJ
−. −
.
= (8)0.259 = 1.71
or T 4 = T 3 × 1.71 = 282 × 1.71 = 482.2 K
Again, considering polytropic expansion 1-2, we have
T
T
p
p
n
1 n
2
1
2
(^1) 135 1
8 135
1
F
HG
I
KJ
=F
HG
I
KJ
−. −
.
= 1.71
T 2 =
T 1
71
302
1.711.
= = 176.6 K
Heat extracted from cold chamber per kg of air
= cp (T 3 – T 2 ) = 1.003 (282 – 176.6) = 105.7 kJ/kg.
Heat rejected in the cooling chamber per kg of air
= cp (T 4 – T 1 ) = 1.003 (482.2 – 302) = 180.7 kJ/kg.
Since the compression and expansion are not isentropic, difference between heat rejected
and heat absorbed is not equal to the work done because there are heat transfers to the sur-
roundings and from the surroundings during compression and expansion.
To find the work done, the area of the diagram ‘1-2-3-4’ is to be considered :
Work done =
n
n− 1
(p 4 V 4 – p 3 V 3 ) –
n
n− 1
(p 1 V 1 – p 2 V 2 )