Two glass bulbs $A$ (of $100 mL$ capacity), and $B$ (of $150 mL$ capacity) containing same gas are connected by a small tube of negligible volume . At a particular temperature, the pressure in $A$ was found to be 20 times more than that in $B$ . The stopcock is opened without changing the temperature. The pressure in $A$ will:

drop by 75%

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drop by 57%

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drop by 25%

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will remain same

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Solution

The correct option is B drop by 57%
Given: $V_{A} = 100 m L$ , $V_{B} = 150 m L$ ,
Let $P_{B} = P$ then $P_{A} = 20 P$
and $V_{f} = V_{A} + V_{B} = 100 m L + 150 m L = 250 m L$
As we know, $n_{T} = n_{A} + n_{B}$
so, $\frac{P_{f} V_{f}}{R T} = \frac{P_{A} V_{A}}{R T} + \frac{P_{B} V_{B}}{R T}$
i.e $P_{f} V_{f} = P_{A} V_{A} + P_{B} V_{B}$
$\Rightarrow P_{f} \times 250 m L = 20 P \times 100 + P \times 150$
$P_{f} = \frac{2150 P}{250}$
Decrease in $P$ of $A = 20 P - \frac{215}{25} \times P$
% drop $= \frac{285}{25} \times P \times \frac{1}{20 P} \times 100 = 57 %$
Thus, the pressure of A will drop by $57$ %.

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