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Question

One mole of a monoatomic gas of molar mass M undergoes a cyclic process as shown in the figure. Here, ρ is the density and P is the pressure of the gas. Find the efficiency of the cycle.


A
35(1ln2)
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B
25(1ln2)
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C
35ln2
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D
2 ln25
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Solution

The correct option is B 25(1ln2)
We can see that the line 12 will pass through the origin if extended. Since ρ is doubled on doubling P, it means ρP i.e the process must be isothermal.
[since ρ=PMRT]
Thus, Work done in process 1-2
ΔW12=nRTlnP1P2=P1V1ln12
=P0Mρ0ln(12)=P0Mρ0ln2
Also, ΔU12=0 [since T is constant]
ΔQ12=ΔW12=P0Mρ0ln2 [heat rejected]

Process 2-3 is isobaric
Thus, ΔW23=2P0(V3V2)=2P0(Mρ3Mρ2)
=2P0M(1ρ012ρ0)=P0Mρ0
ΔU23=nCvΔT=1×32R[T3T2]
=32[P3V3P2V2]=32.2P0(Mρ0M2ρ0)=32P0Mρ0
ΔQ23=ΔW23+ΔU23=52P0Mρ0 [heat supplied]

Process 3-1 is isochoric
So, ΔW31=0
ΔU31=nCvΔT=n.32R[T1T3]
=32[P1V1P3V3]=32[P0Mρ02P0Mρ0]
=32P0Mρ0
ΔQ31=ΔW31=32P0Mρ0 [heat rejected]

Efficiency of the cycle
η=Work doneHeat supplied=P0Mρ0P0Mρ0ln252P0Mρ0
=1ln252=25(1ln2)

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