276 ENGINEERING THERMODYNAMICS
dharm
/M-therm/th5-4.pm5
(i)Change in enthalpy, H 2 – H 1 :We know that, H dH VdpH
pp
12
12
zz= ...(i)
Also pV 11 n=pVn∴ V =
pV
pn n
11
F^1
HGI
KJ/Substituting this value of V in eqn. (i), we getdH pVp dpn n
pp
HH
=F
HGI
KJL
NM
MO
QP
zz P
11112
12/=()pVnnzp p− ndp
p
11 1/ 1/
12=
−+L
N
M
M
MO
Q
P
P
P−+
()pV p
nnn npp11 1/(^11)
(^11)
1
2
−
−
L
N
M
M
M
O
Q
P
P
P
HFG− IKJ FHG− IKJ
[(pV)]
pp
n
nn nn
11
1/ 21
1
1
1 1
1 1
=×− −
L
N
M
M
M
O
Q
P
P
P
FH− IK FH− IK
()pV 11 n^1 /n ()nn ()pp 2 nn()
1 1
1
1 1
1
npV pV
n
()
()
22 11
1
−
−
[Q p 1 V 1 n = p 2 V 2 n]
−×
25
()25 1 103
[20.87 × 10^5 × 0.08 – 4 × 10^5 × 0.3] kJ
×
25
25 10^3
× 10^5 (20.87 × 0.08 – 4 × 0.3) kJ = 234.8 kJ.
Hence, change in enthalpy = 234.8 kJ. (Ans.)
(ii)Change in internal energy, U 2 – U 1 :
H 2 – H 1 = (U 2 + p 2 V 2 ) – (U 1 + p 1 V 1 )
= (U 2 – U 1 ) + (p 2 V 2 – p 1 V 1 )
∴ U 2 – U 1 = (H 2 – H 1 ) – (p 2 V 2 – p 1 V 1 )
= 234.8 – 20.87 10 08 4 10^3
10
55
3
F ×× −××
HG
I
KJ
- kJ
= 234.8 – 46.96 = 187.84 kJ.
Hence, change in internal energy = 187.84 kJ. (Ans.)
(iii)Change in entropy, S 2 – S 1 = 0. (Ans.)
(iv)Heat transfer, Q1–2 = 0. (Ans.)