TITLE.PM5

(Ann) #1

FIRST LAW OF THERMODYNAMICS 137


dharm
/M-therm/Th4-3.pm5

Also γ= =

c
c

p
v

1
0 714.
= 1.4

∴ V 2 = 0.2 ×

410
102 10

5
5

1
×^1
×

F
HG

I


. KJ


.4
= 0.53 m^3

Also, TT^2 pp
1

2
1

1
=F
HG

I
KJ

−γ
γ

∴ TT 21 pp^2
1

1
= FHG IKJ

−γ
γ

=

×
×

F
HG

I
KJ


403 02 10
410

5
5

1

1.^14


1.4
.
= 272.7 K
Mass of the gas,
m
pV
RT
=^11
1

[Q pV = mRT]

where, R = (cp – cv) = (1 – 0.714) kJ/kg K
= 0.286 kJ/kg K = 286 J/kg K or 286 Nm/kg K


∴ m =
410 02
286 403

××^5
×

.
= 0.694 kg.
Process 2-3. Constant pressure :
Q2–3 = mcp (T 3 – T 2 )
72.5 = 0.694 × 1 × (T 3 – 272.7)
∴ T 3 = 72.5
0.694

+ 272.7 = 377 K

Also, V
T

V
T

2
2

3
3

=

or 0.53
272.7
= V^3
377
∴ V 3
0 377
272.7


.53×
= 0.732 m^3
Work done by the path 1-2-3 is given by
W1–2–3 = W1–2 + W2–3


=
pV 11 p V2 2
1


−γ + p^2 (V^3 – V^2 )

=

4 10 0 02 10 0
41

××− ××^55

.2 1. .53




    • 1.02 × 10




(^5) (0.732 – 0.53)


10 4 0 02 0
04
(^5) ()
.
×− ×.2 1. .53



  • 1.02 × 10^5 (0.732 – 0.53)
    = 64850 + 20604 = 85454 Nm or J
    Hence, total work done = 85454 Nm or J. (Ans.)

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