Calculate the change in entropy of 2 moles of an ideal gas upon isothermal expansion at 243.6 K from 20 litre until the pressure becomes 1 atm.

- 4.5 c a l / K

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- 1.25 c a l / K

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1.25 c a l / K

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2.77 c a l / K

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Solution

The correct option is D $2.77 c a l / K$
Given: $P_{1} = 1 a t m$
Number of moles = 2 $m o l$
T = 243.6 $K$
$V_{1}$ = 20 $L$
We know, PV = nRT
Or, $P = \frac{n R T}{V}$
$P_{1} = \frac{2 \times 0.0821 \times 243.6}{20}$
$P_{1} = 2 a t m$

Change in entropy during isothermal process is:
$△ S = n R l n \frac{P_{1}}{P_{2}}$
where $P_{2}$ = final pressure
$P_{1}$ = Initial pressure
R = 2 $c a l / (K . m o l)$
$△ S = 2 \times 2 \times l n \frac{2}{1}$
$Δ S = 2.77 c a l / K$

Theory:

Calculation of $Δ S_{u n i v e r s e}$ for an Isothermal Process:
For an isothermal process $d T = 0$
Isothermal processes can happen reversibly and irreversibly. We have to calculate the change in entropy of the system when it is moving from state A to state B.

For a reversible isothermal process change in entropy for system is given as,

$Δ S_{s y s} = n C_{v, m} l n \frac{T_{2}}{T_{1}} + n R l n \frac{V_{2}}{V_{1}}$
For an isothermal process $T_{1} = T_{2}$ which makes the first term in the equation for change in entropy as zero.

Thus,
$Δ S_{s y s} = n R l n \frac{V_{2}}{V_{1}}$
as change is isothermal,
$Δ S_{s y s} = n R l n \frac{P_{1}}{P_{2}}$

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