Q. A gas is expanded to double its volume by two different processes. One is isobaric and the other is isothermal. Let $W_{1}$ and $W_{2}$ be the respective work done, then :

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A

$W_{2}=W_{1} \ln (2)$

B

$W_{2}=\frac{W_{1}}{\ln (2)}$

C

$W_{2}=\frac{W_{1}}{2}$

D

Data is insufficient

Solution:

In isobaric process,
$W_{1}=p(2 V-V)=p V$
In isothermal process .
$W_{2}=n R T \ln \left(\frac{2 V}{V}\right)=n R T \ln (2)$
$\Rightarrow W_{2} =p V \ln (2)$
$\Rightarrow \frac{W_{1}}{W_{2}} =\frac{p V}{p V \ln (2)}=\frac{1}{\ln (2)}$
$\Rightarrow W_{2} =W_{1} \ln (2)$

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