Question

Consider two rods of same length and different specific heats $(S_1,S_2)$ , conductivities $(K_1,K_2)$ and area of cross-sections $(A_1,A_2)$ and both having temperatures $T_1$ and $T_2$ at their ends. If rate of loss of heat due to conduction is equal, then :-

• A. $K_1{A}_1=K_2{A}_2$
• B. $\frac{K_1{A}_1}{S_1}=\frac{K_2{A}_2}{S_2}$
• C. $K_2{A}_1=K_1{A}_2$
• D. $\frac{K_2{A}_1}{S_2}=\frac{K_1{A}_2}{S_1}$

Answer 1

Answer: (A)

Rate of heat loss in rod $1=Q_1=\frac{K_1{A}_1(T_1-T_2)}{l_1}$
Rate of heat loss in rod $2=Q_2=\frac{K_2{A}_2(T_1-T_2)}{l_2}$
By problem, $Q_1=Q_2$
$\therefore \frac{K_1{A}_1(T_1-T_2)}{l_1}=\frac{K_2{A}_2(T_1-T_2)}{l_2}$
$\therefore K_1{A}_1=K_2{A}_2$
$25mm$ $[\because l_1{l}_2]$