One mol of an ideal gas is allowed to expand reversibly and adiabatically from a temperature of 27oC. If the work done during the process is 3 kJ, then the final temperature of gas is:
Given: Cv for the gas = 20J/K
A
100 K
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B
150 K
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C
195 K
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D
255 K
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Solution
The correct option is B 150 K The gas expands adiabatically, so the heat transfer is zero.
From the first law, ΔU=w
At constant volume, ΔU=nCvdT
So, w = nCvdT
Given, T1=300K ; T2 = T K
Since, the work done is by the gas w = −3×103 kJ
For the gas Cv=20J/K ∴−3000 = 1×20×(T−300)
which gives T = 150 K