The temperature of a certain mass of a gas is doubled. If the initial pressure of the gas is 1 atm, find the % increase in pressure.

50%

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100%

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150%

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200%

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Solution

The correct option is B 100%
Given information:
Initial pressure of the gas $P_{1} = 1 a t m$
Initial temperature of the gas $T_{1} = T K$
Final temperature of the gas $T_{2} = 2 T K$
Final Pressure of the gas $P_{2} = ?$
From Gay Lussac's law, $\frac{P_{1}}{T_{1}} = \frac{P_{2}}{T_{2}}$ at constant volume.

$\frac{1}{T} = \frac{P_{2}}{2 T}$

Hence, $P_{2} = 2 a t m$

Increase in pressure $= 2 - 1 = 1$ atm

Percentage increase in pressure $= \frac{increase in pressure}{initial pressure} \times 100$ $= \frac{1}{1} \times 100 = 100$ %

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