In the given elliptical `P-V` diagram A. The work done is positveB. The change in internal energy is non-zeroC. The work done `=-((pi)/(4))(P_(2)-P_(1))(V_(2)-V_(1))`D. The work done `=(pi)(V_(2)-V_(1))^(2)=pi(P_(2)P_(1))^(2)`

In the given elliptical `P-V` diagram A. The work done is positveB. Th

1.	In the given elliptical `P-V` diagram A. The work done is positveB. The change in internal energy is non-zeroC. The work done `=-((pi)/(4))(P_(2)-P_(1))(V_(2)-V_(1))`D. The work done `=(pi)(V_(2)-V_(1))^(2)=pi(P_(2)P_(1))^(2)`
Answer» Correct Answer - C The work done =area of P-V diagram `a=(V_(2)-V_(1))/(2),b=(P_(2)-P_(1))/(2)` `W=-pi((V_(2)-V_(1))/(2))((P_(2)-P_(1))/(2))` But the cyclic process is anticlockwise. Hence, the work done is negative..

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In the given elliptical `P-V` diagram A. The work done is positveB. The change in internal energy is non-zeroC. The work done `=-((pi)/(4))(P_(2)-P_(1))(V_(2)-V_(1))`D. The work done `=(pi)(V_(2)-V_(1))^(2)=pi(P_(2)P_(1))^(2)`

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