1000 Solved Problems in Modern Physics

(Tina Meador) #1

290 4 Thermodynamics and Statistical Physics


The negative sign in (3) is omitted because asλincreasesvdecreases.

4.76 Power radiated from the sun=σ×(surface area)×Ts^4


Ps=σ 4 πRs^2 Ts^4
Power received by the earth,

PE=

πRe^2
4 πr^2

.Ps

The factorπR^2 erepresents the effective (projected) area of the earth on
which the sun’s radiation is incident at a distancerfrom the sun. The factor
4 πr^2 is the surface area of a sphere scooped with the centre on the sun. Thus
πRe^2 / 4 πr^2 is the fraction of the radiation intercepted by the earth’s surface
area.
Now power radiated by earth,
PE=σ 4 πR^2 ETE^4
For radiation equilibrium, power radiated by the earth=power received by
the earth.
σ 4 πR^2 ETE^4 =σ 4 πR^2 sTs^4.

πR^2 E
4 πr^2

orTE=Ts

(

Rs
2 r

) 1 / 2

= 5 , 800

[

7 × 108

2 × 1. 5 × 1011

] 1 / 2

=280 K= 7 ◦C

Note that the calculations are approximate in that the earth and sun are not
black bodies and that the contribution of heat from the interior of the earth has
not been taken into account.

4.77 Power radiated by the sun,Ps=σ 4 πRs^2 Ts^4
Power received by 1 m^2 of earth’s surface,


S=

σ 4 πRs^2 Ts^4
4 πr^2
=

(5. 7 × 10 −^8 )(7× 108 )^2 (5,800)^4

(1. 5 × 1011 )^2

= 1 ,400 W/m^2

4.78 P= 4 πr^2 σT^4
= 4 π(0.3)^2 (5. 67 × 10 −^8 )(10^7 )^4
= 6. 4 × 1020 W

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