Find the efficiency of the thermodynamic cycle shown in figure for an ideal diatomic gas.

\frac{1}{4}

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\frac{1}{9}

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\frac{1}{8}

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\frac{1}{18}

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Solution

The correct option is D $\frac{1}{18}$
From the $P - V$ graph,
$W_{A \to B} = \frac{1}{2} \times P_{0} V_{0} + P_{0} V_{0} = \frac{3}{2} P_{0} V_{0}$
$W_{B \to C} = 0$
$W_{C \to A} = P_{0} (- V_{0}) = - P_{0} V_{0}$
Using ideal gas equation,
$T_{A} = \frac{P_{0} V_{0}}{n R}$ , $T_{B} = \frac{4 P_{0} V_{0}}{n R}$ & $T_{C} = \frac{2 P_{0} V_{0}}{n R}$
$U_{A \to B} = n C_{v} (T_{B} - T_{A})$
$= n (\frac{5 R}{2}) (\frac{3 P_{0} V_{0}}{n R}) = \frac{15}{2} P_{0} V_{0}$
$U_{B \to C} = n C_{v} (T_{C} - T_{B})$
$= n (\frac{5 R}{2}) (\frac{- 2 P_{0} V_{0}}{n R}) = - 5 P_{0} V_{0}$
$U_{C \to A} = n C_{v} (T_{A} - T_{C})$
$= n (\frac{5 R}{2}) (\frac{- P_{0} V_{0}}{n R})$
$= - \frac{5}{2} P_{0} V_{0}$

$∴ Q_{A \to B} = W_{A \to B} + U_{A \to B}$
$= \frac{3}{2} P_{0} V_{0} + \frac{15}{2} P_{0} V_{0}$
$= 9 P_{0} V_{0}$
$Q_{B \to C} = W_{B \to C} + U_{B \to C}$
$= 0 + (- 5 P_{0} V_{0})$
$= - 5 P_{0} V_{0}$
$Q_{C \to A} = W_{C \to A} + U_{C \to A}$
$= - P_{0} V_{0} - \frac{5}{2} P_{0} V_{0} = - \frac{7}{2} P_{0} V_{0}$
Therefore,
$Q_{absorbed} = 9 P_{0} V_{0}$
Total work done $W = \frac{P_{0} V_{0}}{2}$
Efficiency $= \frac{W}{Q_{absorbed}} = \frac{\frac{P_{0} V_{0}}{2}}{9 P_{0} V_{0}} = \frac{1}{18}$

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