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A person has a sample of gas with a volume of 7.41L and a temperature of 418.55K. If the volume of the container is reduced to 2.59L, what will the new temperature of the gas be…

A person has a sample of gas with a volume of 7.41L and a temperature of 418.55K. If the volume of the container is reduced to 2.59L, what will the new temperature of the gas be…
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A person has a sample of gas with a volume of 7.41L and a temperature of 418.55K. If the volume of the container is reduced to 2.59L, what will the new temperature of the gas be in Kelvin?

User Erik Rothoff
by
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1 Answer

3 votes

For this problem, we could use the Charles's law:


(V_1)/(T_1)=(V_2)/(T_2)

We could replace the values that the question gives to us:


(7.41L)/(418.55K)=(2.59L)/(T_2)\to T_2=(418.55K\cdot2.59L)/(7.41L)=146.29K

Therefore, the new temperature of the gas is 146.29K.

User Justin Ryder
by
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