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Ideal Gas Equation

'n' moles of ...

Question

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

\frac{6 P_{0} V_{0}}{n R}

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\frac{9 P_{0} V_{0}}{4 n R}

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\frac{3 P_{0} V_{0}}{2 n R}

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\frac{7 P_{0} V_{0}}{n R}

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Solution

The correct option is B $\frac{9 P_{0} V_{0}}{4 n R}$
The equation of straight line = $y - y_{1} = m (x - x_{1})$
where m is slope of the line.
Slope of the line = $\frac{2 P_{o} - P_{o}}{V_{o} - 2 V_{o}}$
$= - \frac{P_{o}}{V_{o}}$
Equation of line
$P - 2 P_{o} = - \frac{P_{o}}{V_{o}} (V - V_{o})$
$P = - \frac{P_{o} V}{V_{o}} + 3 P_{o}$
Since the given gas is an ideal gas hence we can use PV= nRT
$\frac{n R T}{V} = - \frac{P_{o} V}{V_{o}} + 3 P_{o}$ ....(i)
differentiating with respect to V we get:
$n R \frac{d T}{d V} = - \frac{P_{o}}{V_{o}} (2 V) + 3 P_{o}$
For maximum temperature put $\frac{d T}{d V} = 0$
$\frac{d T}{d V} = 3 P_{o} V_{o} - 2 P_{o} V$
For maximum temperature
$3 P_{o} V_{o} - 2 P_{o} V = 0$
$\Rightarrow V = \frac{3 V_{o}}{2}$ ...(ii)

putting (ii) value in eq. (i):

$T_{m a x} = (- \frac{3 P_{o} V_{o}}{2 V_{o}} + 3 P_{o}) \frac{3 V_{o}}{2 n R}$
$T_{m a x} = \frac{3 P_{o} V_{o}}{2 V_{o}} \times \frac{3 V_{o}}{2 n R}$
$T_{m a x} = \frac{9 P_{0} V_{0}}{4 n R}$

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