The cyclic process for 1 mole of an idea...

The cyclic process for 1 mole of an ideal gas is shown in the V-T diagram. The work done in AB, BC and CA respectively is

`0,RT_(1)Ln((V_(1))/(V_(2))),R(T_(1)-T_(2))`

`R,(T_(1)-T_(2))R,RT_(1)In(V_(1)/(V_(2)))`

`0,RT_(2)ln((V_(2))/(V_(1))),(RT_(1))/(V_(1))(V_(1)-V_(2))`

`0,RT_(2)ln(V_(1))/(V_(2)),R(T_(1)-T_(2))`

Text Solution

Verified by Experts

The correct Answer is:

During AB, process is isochoric
`therefore DeltaV=0`
`thereforeW=0`
During BC, process is
isothermal
`therefore DeltaT=0`
`therefore W=RT_(2)ln(V_(2)/(V_(1)))`

During CA, process is isobarci. So pressure is constant
`therefore W=P(V_(1)-V_(2))`
But `PV_(1)=rT_(1) therefore P=(RT_(1))/(V_(1))=(RT_(2))/(V_(2))`
`therefore W=(RT_(1))/(V_(1))(V_(1)-V__(2))=(RT_(2))/(V_(2))(V_(1)-V_(2))`

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