Two moles of an ideal gas heated at constant pressure of one atmosphere from 27oCto127oC. If Cv,m=(20+10−2T)JK−1mol−1, then q and △U for the process are respectively:
A
6362.8 J, 4700 J
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B
3037.2 J, 4700 J
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C
7062.8 J, 5400 J
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D
3181.4 J, 2350 J
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Solution
The correct option is A 6362.8 J, 4700 J △U (internal energy) is given as: dU=nCvdT integrating both sides we get △U=n∫400300(20+10−2T)dT=2[20×100+10−22(4002−3002)]=4700J
we know at constant pressure heat absorbed is given as: dq=nCpdT and Cp=R+Cv so, dq=n(Cv+R)dT
integrating both sides we get : q=n∫400300(R+20+10−2T)dT=2[(R×100)+(20×100)+10−22(4002−3002)]=6362.8J