All 12 Chapters Covered
SOLUTION MANUAL
, C O N T E N T S
Preface i
Solutions to Problems Chapter 2 1
Solutions to Problems Chapter 3 17
Solutions to Problems Chapter 4 29
Solutions to Problems Chapter 5 49
Solutions to Problems Chapter 6 81
Solutions to Problems Chapter 7 107
Solutions to Problems Chapter 8 121
Solutions to Problems Chapter 9 133
Solutions to Problems Chapter 10 153
Solutions to Problems Chapter 11 165
Solutions to Problems Chapter 12 177
, S O L U T I O N S T O P R O B L E M S
C H A P T E R 2
1. From problem statement, we want to find b P/
T g . Using the product-rule,
v
F PI F v F PI
Iv
HG T KJ HG vKJ P T
By definition, HG T
KJ
1 F vI
P G J
vH T K P
and
T
F vGI J
1
vH P T
Then, K
FP P
I 1.8 5
D -1
HG KJ
10 33.8 bar C
6
T v T 5.32 10
Integrating the above equation and assuming P and T constant over the temperature
range, we obtain
P P
T
T
For T = 1 C, we
get
P 33.8 bar
1
, 2 Solutions Manual
2. Given the equation of state,
GFV bJ RT P
Hn K
FS I FP
we find:
nR
I I
HG V KJ HG T KJ V
T V
nb
F S I F V I nR
HG P KJ HG T KJ T P
P
F U I F PI
HG V KJ T G
H T KJ P
T V
0
F UI F U F VI
I
G
H PK J H V KJ HG P KJ
G 0
T T T
F HI F VI
HG P KJ T G
H T T KJ V nb
For an isothermal change,
z
H TK V
V1 nb
S V2 nb
V2 FG dV nR ln
P IJ
1 V
P1
z NMH
P
nR ln
P2
V K PKJ P
P
HG
U
z
P
2 LFG F O dP
VT
0
U IJ I Q
1
T
2L F O
1 NMMTHG T K P P
V I
J
SOLUTION MANUAL
, C O N T E N T S
Preface i
Solutions to Problems Chapter 2 1
Solutions to Problems Chapter 3 17
Solutions to Problems Chapter 4 29
Solutions to Problems Chapter 5 49
Solutions to Problems Chapter 6 81
Solutions to Problems Chapter 7 107
Solutions to Problems Chapter 8 121
Solutions to Problems Chapter 9 133
Solutions to Problems Chapter 10 153
Solutions to Problems Chapter 11 165
Solutions to Problems Chapter 12 177
, S O L U T I O N S T O P R O B L E M S
C H A P T E R 2
1. From problem statement, we want to find b P/
T g . Using the product-rule,
v
F PI F v F PI
Iv
HG T KJ HG vKJ P T
By definition, HG T
KJ
1 F vI
P G J
vH T K P
and
T
F vGI J
1
vH P T
Then, K
FP P
I 1.8 5
D -1
HG KJ
10 33.8 bar C
6
T v T 5.32 10
Integrating the above equation and assuming P and T constant over the temperature
range, we obtain
P P
T
T
For T = 1 C, we
get
P 33.8 bar
1
, 2 Solutions Manual
2. Given the equation of state,
GFV bJ RT P
Hn K
FS I FP
we find:
nR
I I
HG V KJ HG T KJ V
T V
nb
F S I F V I nR
HG P KJ HG T KJ T P
P
F U I F PI
HG V KJ T G
H T KJ P
T V
0
F UI F U F VI
I
G
H PK J H V KJ HG P KJ
G 0
T T T
F HI F VI
HG P KJ T G
H T T KJ V nb
For an isothermal change,
z
H TK V
V1 nb
S V2 nb
V2 FG dV nR ln
P IJ
1 V
P1
z NMH
P
nR ln
P2
V K PKJ P
P
HG
U
z
P
2 LFG F O dP
VT
0
U IJ I Q
1
T
2L F O
1 NMMTHG T K P P
V I
J
