GAS POWER CYCLES 653
dharm
\M-therm\Th13-3.pm5
Compression ratio, rc = 9
Expansion ratio, re = 5
Number of cycles/sec. = 8
Cylinder diameter, D = 250 mm = 0.25 m
Stroke length, L = 400 mm = 0.4 m
Heat liberated at constant pressure
= 2 × heat liberated at constant volume
(i)Pressure and temperatures at all salient points :
For compression process 1-2,
p 1 V 1 n = p 2 V 2 n
∴ p 2 = p 1 × V
V
n
1
2
F
HG
I
KJ
= 1 × (9)1.25 = 15.59 bar. (Ans.)
A1so, T
T
V
V
n
2
1
1
2
1
=F 9 125 1
HG
I
KJ
=
−
(). − = 1.732
∴ T 2 = T 1 × 1.732 = 303 × 1.732
= 524.8 K or 251.8°C. (Ans.)
Also, cp(T 4 – T 3 ) = 2 × cv(T 3 – T 2 ) ...... (given) ...(i)
For constant pressure process 3-4,
T
T
V
V
r
r
TT
c
e
4
3
4
3
43
9
5
8
8
===
==
=
ρ Compression
Expansion ratio
1.
1.
ratio ( )
()
V
V
ie r V
V
V V V V V V
r
r
V
V
r
r
e
c
cc
e
5
4
5
3
3 4 1 3 1 2 5 4
1
1
(. ., )=×
=×
=×=
∴= =
L
N
M M M M M M M M M M M
O
Q
P P P P P P P P P P P
ρ
ρρ
ρ
Substituting the values of T 2 and T 4 in the eqn. (i), we get
1.0(1.8T 3 – T 3 ) = 2 × 0.71(T 3 – 524.8)
0.8T 3 = 1.42(T 3 – 524.8)
0.8T 3 = 1.42T 3 – 745.2
∴ 0.62T 3 = 745.2
T 3 = 1201.9 K or 928.9°C. (Ans.)
Also,
p
T
p
T
3
3
2
2
= ...... for process 2-3
∴ p 3 = p 2 ×
T
T
3
2
= 15.59 ×
1201 9
524 8
.
. = 35.7 bar. (Ans.)
p 4 = p 3 = 35.7 bar. (Ans.)
T 4 = 1.8T 3 = 1.8 × 1201.9 = 2163.4 K or 1890.4°C. (Ans.)
For expansion process 4-5,
p 4 V 4 n = p 5 V 5 n