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Question

A certain volume of dry gas at NTP is expanded reversibly to three times its volume adibatically. Calculate the final temperature and pressure assuming ideal behaviour.CpCv for air = 1.4.

Given: 30.4=1.55,31.4=4.66

A
176 K, 0.215 atm
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B
154 K, 1.52 atm
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C
254 K, 0.568 atm
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D
454 K, 0.684 atm
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Solution

The correct option is A 176 K, 0.215 atm
T1 (at NTP) =273 K, V2=3V1 P1 = 1 atm
For adiabatic expansion, we have TVγ1 = constant
So, T1T2=(V2V1)γ1

273T2=(3V1V1)1.41
Calculating for T2, we get T2 = 176 K
Similarly, final pressure under adiabatic conditions
P1P2=(V2V1)γ
So, 1P2=(3V1V1)1.4
P2 = 0.215 atm



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