Question

A Carnot engine absorbs $1000J$ of heat energy from a reservoir at $127^{\circ }$C and rejects $600J$ of heat energy during each cycle. The efficiency of engine and temperature of sink will be:

• A. $20\%$ and $-43^{\circ }$C
• B. $40\%$ and $-33^{\circ }$C
• C. $50\%$ and $-20^{\circ }$C
• D. $70\%$ and $-10^{\circ }$C

Answer 1

Answer: (B)

Given: $Q_1=1000J$
$Q_2=600J$
$T_1=127^{°}C=400K$
$T_2=?$
$\eta =?$
Efficiency of carnot engine,
$\eta =\frac{W}{Q_1}\times 100\%$
or, $\eta =\frac{Q_2-Q_1}{Q_1}\times 100\%$
$\eta =\frac{1000-600}{1000}\times 100\%$
$\eta =40\%$
Now, for carnot cycle $\frac{Q_2}{Q_1}=\frac{T_2}{T_1}$
$\frac{600}{1000}=\frac{T_2}{400}$
$T_2=\frac{600\times 400}{1000}=240K=240-273$
$\therefore T_2=-33^{°}C$