TITLE.PM5

(Ann) #1
850 ENGINEERING THERMODYNAMICS

dharm
\M-therm\Th15-4.pm5

Now substituting the values in the above equation, we get

Q 12 =

0 283 5 67^91
100

303
100
1003
003
1 1003
003
0 4444

44
..

.
.

.
.
.

× F
HG

I
KJ
−F
HG

I
KJ

L
N

M
M

O
Q

P
P
F −
HG

I
KJ++

F −
HG

I
KJ×

=
0.283 5.67(0.686 84.289)
32.33 1 14.37

×−
++
= – 2.81 W


  • ve sign shows heat flows from outside to inside. (Ans.)
    Example 15.32 (Radiation shield). The large parallel planes with emissivities 0.3 and 0.8
    exchange heat. Find the percentage reduction when a polished aluminium shield of emissivity 0.04 is
    placed between them. Use the method of electrical analogy.
    Solution. Given : ε 1 = 0.3 ; ε 2 = 0.8 ; ε 3 = 0.04
    Consider all resistances (surface resistances and space resistances) per unit surface area.
    For steady state heat flow,
    EEbb 13
    1 1 1 1
    1


3
3


F −
HG

I
KJ

++−
F
HG

I
KJ

ε
ε

ε
ε

=

EEbb 32
1 3 1 1
3

2
2


F −
HG

I
KJ

++−
F
HG

I
KJ

ε
ε

ε
ε
[aQ AAA12 3=== 11 m^2 ndFF13 32−−,=]

ε 1 ε 3 ε 3 ε 2

Radiation
shield

Eb 1 J 1 J 3 Eb3 J′ 3 J 2 Eb 2

1 –
A

ε
ε

1
11

1
AF 1 1–3

1 –
A

ε
ε

3
13

1 –
A

ε
ε

3
33

1
AF 3 3–2

1 –
A

ε
ε

2
22
Fig. 15.57

or
σ

εε

σ

εε

()()TT 14 34 TT

13

3
4
2
4

32

(^111111)

+−
= −
+−
or
TT 14 34 TT 34 24
1
004

+−
= −
(^1) +−
0.3
1
0.04
1 1
0.8
1
.

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