TITLE.PM5

(Ann) #1

FIRST LAW OF THERMODYNAMICS 193


dharm
/M-therm/Th4-5.pm5

1

2
165° C

1.5 × 10^5

7 × 10^5

p (N/m )^2

v 1 v 2 v (m /kg)

3

Fig. 4.63
(i)Change of internal energy :
The internal energy at state 1 is found by using the relation :
u 1 = (1 – x) uf + xug
= (1 – 0.95) 696 + (0.95 × 2573)
∴ u 1 = 2479.15 kJ/kg
Interpolating from superheat tables at 1.5 bar and 165°C, we have

u 2 = 2580 +^1550 (2856 – 2580)
= 2602.8 kJ/kg
∴ Gain in internal energy,
u 2 – u 1 = 2602.8 – 2479.15 = 123.65 kJ/kg. (Ans.)
(ii)Change of enthalpy :
Enthalpy at state 1 (7 bar),
h 1 = hxhf 11 + 1 fg
At 7 bar. hf = 697.1 kJ/kg and hfg = 2064.9 kJ/kg
∴ h 1 = 697.1 + 0.95 × 2064.9 = 2658.75 kJ/kg
Interpolating from superheat tables at 1.5 bar and 165°C, we have

h 2 = 2772.6 +^1550 (2872.9 – 2772.6) = 2802.69 kJ/kg
∴ Change of enthalpy
= h 2 – h 1 = 2802.69 – 2658.75 = 143.94 kJ/kg. (Ans.)
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