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For isothermal expansion of an ideal gas...

For isothermal expansion of an ideal gas, the correct combination of the thermodynamic parameters will be

A

`Delta U = 0, Q = 0, w ne 0 and Delta H ne 0`

B

`Delta U ne 0, Q ne 0, w ne 0 and Delta H ne 0`

C

`Delta U= 0, Q ne 0, w= 0 and Delta H ne 0`

D

`Delta U = 0, Q ne 0, w ne 0 and Delta H =0`

Text Solution

Verified by Experts

The correct Answer is:
D
For isothermal process, `Delta T = 0`. From first law of thermodynamics `Delta U= Q + W`
`therefore Delta U= nC_(v) Delta T= 0 " As " Delta U= 0`
`Delta H= nC_(P) Delta T= 0 " " therefore Q= W ne 0`
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