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Question
An insulated container of gas has two chambers separated by an insulating partition. One of the chambers has volume V1 and contains ideal gas at pressure P1 and temperature T1. The other chamber has volume V2 and contains ideal gas at pressure P2 and temperature T2. If the partition is removed without doing any work on the gases, calculate the final equilibrium temperature of the container.
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Solution
Let T be the equilibrium temperature and let n1 and n2 be the number of moles in vessels 1 and 2 respectively. As there is no loss of energy,
`"n"_1(3/2"RT"_1) + "n"_2(3/2"RT"_2) = ("n"_1 + "n"_2) (3/2"RT")`
`"n"_1"T"_1 + "n"_2"T"_2 = ("n"_1 + "n"_2)"T"`
T = `("n"_1"T"_1 + "n"_2"T"_2)/("n"_1 + "n"_2)`
Now, n1 = `("P"_1"V"_1)/"RT"_1`, n2 = `("P"_2"V"_2)/"RT"_2`
Substituting n1 and n2 values and solving, we get
T = `("T"_1"T"_2("P"_1"V"_1 + "P"_2"V"_2))/("P"_1"V"_1"T"_2 + "P"_2"V"_2"T"_1)`
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