TITLE.PM5

(Ann) #1
640 ENGINEERING THERMODYNAMICS

dharm
\M-therm\Th13-3.pm5

Consider 1 kg of air.
Total heat supplied = Heat supplied during the operation 2-3
+ heat supplied during the operation 3-4
= cv(T 3 – T 2 ) + cp(T 4 – T 3 )
Heat rejected during operation 5-1 = cv(T 5 – T 1 )
Work done = Heat supplied – heat rejected
= cv(T 3 – T 2 ) + cp(T 4 – T 3 ) – cv(T 5 – T 1 )

ηdual = Work done
Heat supplied
=

−+ −− −
−+ −

cT T c T T c T T
cT T c T T

v p v
v p

()()()
()()

32 43 51
32 43
= 1 –

cT T
cT T c T T

v
v p

()
()()

51
32 43


−+ −

= 1 –
cT T
TT TT

v()
()()

51
32 43


−+ −γ ...(i)
Q γ=
F
HG

I
KJ

c
c

p
v
Compression ratio, r = v
v

1
2
During adiabatic compression process 1-2,
T
T

2
1

=
v
v

(^1) r
2
1
F 1
HG
I
KJ




γ
()γ ...(ii)
During constant volume heating process,
p
T
3
3


p
T
2
2
or
T
T
3
2


p
p
3
2
= β, where β is known as pressure or explosion ratio.
or T 2 =
T 3
β ...(iii)
During adiabatic expansion process,
T
T
4
5


v
v
5
4
F^1
HG
I
KJ
−γ


r
ρ
F γ
HG
I
KJ
− 1
...(iv)
Q v
v
v
v
v
v
v
v
v
v
v
v
5 r
4
1
4
1
2
2
4
1
2
3
4
==×=×=
F
HG
I
ρ KJ
, beinρ gthe cut off ratio-
During constant pressure heating process,
v
T
v
T
3
3
4
4


T 4 = T 3
v
v
4
3
= ρ T 3 ...(v)
Putting the value of T 4 in the eqn. (iv), we get
ρ
ρ
T γ
T
3 r
5
1
=F
HG
I
KJ

or T 5 = ρ. T 3. ρ
γ
r
F
HG
I
KJ
− 1

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