Question

A sphere at temperature 600 K is placed in environment of temperature 200 K, its cooling rate is H. If the temperature is reduced to 400 K, the cooloing is same environment will be

• A. $\frac{H}{16}$
• B. $\left(\frac{9}{27}\right)H$
• C. $\left(\frac{16}{3}\right)H$
• D. $\left(\frac{3}{16}\right)H$

Answer 1

Answer: (D)

From Stefans law, the total radiant energy emitted per second per unit surface area of a black body is proportional to the fourth power of the absolute temperature of the body. That is $E=\sigma T^4$ where, $\sigma$ is Stefans constant. When sphere cools from 600 K to 200 K, energy 400 K to 200 K then.
$H=\sigma [{(600)}^4-{(400)}^4]$
$\frac{H}{H}=\frac{[{(600)}^4-{(200)}^4]}{[{(600)}^4-{(400)}^4]}$
Using $a^4-b^4=(a^2-b^2)(a^2+b^2),$
we have $\frac{H}{H}=\frac{[{(600)}^2-{(200)}^2]}{[{(600)}^2-{(400)}^2]}\times \frac{[{(600)}^2+{(200)}^2]}{[{(600)}^2+{(400)}^2]}$
$\frac{H}{H}=\frac{32}{12}\times \frac{40}{20}=\frac{16}{3}$
$H=\frac{3}{16}H$