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Question

A Carnot engine works between temperatures 127C and 73C . In process 1, by increasing the temperature of source by 50C, efficiency of engine becomes η1. In process 2, by decreasing the temperature of sink by 50C, efficiency of engine becomes η2. Then which of the following option is correct?

A
η1>η2
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B
η1=η2
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C
η2>η1
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D
η2+2=2η1
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Solution

The correct option is C η2>η1
First, let us find the efficiency of the engine initially,
η=1T2T1
Temperature of sink(colder body), T2=(73)+273=200 K
Temperature of source(hotter body), T1=127+273=400 K
η=1(27373)(273+127)=0.5
When the temperature of the source is increased by 50C
i.e., T1=(127+50)+273=450 K
η1=1200 K450 K=0.555
η1=0.555×100=55.5%
when the temperature of the sink is decreased by 50C
i.e., T2=(7350)+273=150 K
η2=1T2T1=1150400=0.625
η2=0.625×100=62.5%
Hence (η2>η1) and reducing the temperature of the sink by 50C improves the efficiency of heat engine.

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