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Question

Two samples A and B of the same gas have equal volumes and pressures. The gas in sample A is expanded isothermally to double its volume and the gas in B is expanded adiabatically to double its volume. If the work done by the gas is the same for the two cases, then γ (specific heat) satisfies the equation

A
121γ=(γ1)ln 2
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B
12γ1=(1γ)ln 2
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C
2γ1=ln 2
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D
121γ=γ ln 2
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Solution

The correct option is A 121γ=(γ1)ln 2
Work done =nRT1 ln (V2V1) for isothermal process,
work done =nR(T1T2γ1) for adiabatic change.
From question,
nRT1ln(V2V1)=nR(T1T2γ1)
T1T2=(V2V1)γ1
ln 2(γ1)=(1T2T1)
ln 2(γ1)=112γ1
ln 2(γ1)=121γ
Why this question?

Importance in JEE: Problems comparing isothermal and adiabatic work done are generally asked in JEE.

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