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Question

A Carnot engine whose sink is at 300K has an efficiency of 40%. By how much should the temperature of the source be increased so as to increase its efficiency by 50% of original efficiency?


A

380K

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B

275K

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C

215K

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D

250K

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Solution

The correct option is D

250K


Step 1: Given

The temperature of the sink, TL=300K

Original efficiency, η1=40%=0.4

New efficiency,

η2=40%+(50%of40%)=0.4+50%(0.4)=0.4+0.2=0.6

Step 2: Formula used

Let the initial temperature of the source be TH, then the formula for efficacy is η1=1-TLTH.

Step 3: Determine the initial temperature of the source

Using the formula for efficiency,

η1=1-TLTH0.4=1-300THTH=300(1-0.4)TH=500K

Step 4: Determine the temperature of the source using the new efficiency

Let the new temperature of the source be T'H

η2=1-TLT'H0.6=1-300T'HT'H=3001-0.6T'H=750K

Step 5: Determine the difference in the temperature of the source

TH=T'H-TH=750-500=250K

Therefore, the temperature of the source has to be increased by 250K.

Hence, option D is the correct option.


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