The gas inside of a container exerts 48 Pa of pressure and is at a temperature of 320 ^o K. If the pressure in the container changes to 64 Pa with no change in the container's volume, what is the new temperature of the gas?

2 Answers
Narad T.
Apr 15, 2017

The new temperature is =426.7K

Explanation:

We apply Gay Lussac's Law

P_1/T_1=P_2/T_2

The initial pressure is P_1=48Pa

The initial temperature is T_1=320K

The final pressure is P_2=64Pa

The final temperature is

T_2=P_2/P_1*T_1

=64/48*320

=426.7K

Deep
Apr 15, 2017

use gay-lussac's law .

Explanation:

gay-lusaac's law gives you the relation between pressure and temperature of a gas inside a container with a fixed volume :
P_1/T_1 = P_2/T_2
P_1 is the pressure exerted by a gas at temperature T_1 and P_2 is the pressure exerted by the gas at temperature T_2 .
now, substituting the values :
48/320 =64/T
T= 426.67 k

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