Heat and Thermodynamics 5 Question 14

15. $n$ moles of an ideal gas undergoes a process $A$ and $B$ as shown in the figure. The maximum temperature of the gas during the process will be

(2016 Main)

(a) $\frac{9}{4} \frac{p _0 v _0}{n R}$

(b) $\frac{3}{2} \frac{p _0 v _0}{n R}$

(c) $\frac{9}{2} \frac{p _0 v _0}{n R}$

(d) $\frac{9 p _0 v _0}{n R}$

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Answer:

Correct Answer: 15. (a)

Solution:

  1. $p-V$ equation for path $A B$

$$ p=-\left(\frac{p _0}{V _0}\right) V+3 p _0 $$

$\Rightarrow \quad p V=3 p _0 V-\frac{p _0}{V _0} V^{2}$

or

$$ T=\frac{p V}{n R}=\frac{1}{n R}\left(3 p _0 V-\frac{p _0}{V _0} V^{2}\right) $$

For maximum temperature,

$$ \begin{aligned} \frac{d T}{d V} & =0 \Rightarrow 3 p _0-\frac{2 p _0 V}{V _0}=0 \\ \Rightarrow \quad V & =\frac{3}{2} V _0 \text { and } p=3 p _0-\frac{p _0}{V _0}=\frac{3 p _0}{2} \end{aligned} $$

Therefore, at these values :

$$ \therefore \quad T _{\max }=\frac{\left(\frac{3 p _0}{2}\right)\left(\frac{3 V _0}{2}\right)}{n R}=\frac{9 p _0 V _0}{4 n R} $$



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