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Question

If 2 moles of an ideal monoatomic gas at temperature T0 is mixed with 4 moles of another ideal monoatomic gas at temperature 2T0 in a closed vessel, then the temperature of the mixture is

A
53T0
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B
32T0
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C
43T0
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D
54T0
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Solution

The correct option is A 53T0
Let 'n' be the total number of moles of the mixture of two gases.
Given,
Number of moles of monoatomic gas 1
(n1)=2 moles
Number of moles of monoatomic gas 2
(n2)=4 moles
Let T be the temperature of the mixture. Then,
Internal energy of the mixture of two gases is given by
U=U1+U2
U=f2(n1RT1++n2RT2)
n(fR2) T=fR2×n1×T0+fR2×n2×2T0 ...(1)
Number of moles of gas in the mixture (n)=n1+n2=2+4
Also, f=3 for monoatomic gas.
Using this in (1), we get
(2+4)T=2T0+8T0 (n1=2,n2=4)
T=53T0
Thus, option (a) is the correct answer.

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