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In an isobaric process (lambda is adiaba...

In an isobaric process (`lambda` is adiabatic exponent of the gas)

A

The heat given to gas is `(lambda)/(lambda-1)` times the work done by gas.

B

The work done by gas is `(lambda-1)` time the change in internal energy.

C

The temperature of gas in increased.

D

The temperature of gas is decreased.

Text Solution

Verified by Experts

At constant pressure.
If volume increases. Temperature also increases
volume decreases,
In isobaric process,
`DeltaQ=lambda.DeltaU`
`therefore DeltaQ=DeltaU+DeltaW`
`therefore DeltaW=lambda.DeltaU-DeltaU=(y-1)DeltaU`
`DeltaW=(y-1)DeltaU`
`thereforeDeltaQ=(lambda)/((y-1))DeltaW`
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