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Question

Consider a binary mixture of two ideal volatile liquids A and B having vapour pressure of 400 mm Hg and 600 mm Hg in their pure state.
What will be the mole fraction of component A in vapour phase (yA) if the total pressure (PT) of the solution is 500 mm Hg?

A
0.3
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B
0.6
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C
0.7
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D
0.4
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Solution

The correct option is D 0.4
χA=yA×PTpA
χA is the mole fraction of component A in liquid phase

χB=yB×PTpB
χB is the mole fraction of component B in liquid phase

Also χA+χB=1

So, 1PT=yApA+yBpB1PT=yApA+1yApB
Solving,

PT=pA×pBpA+(pBpA)×yA
Here ,
PT=500 mm HgpA=400 mm HgpB=600 mm Hg
500=400×600400+(600400)×yA5=244+2yA20+10yA=24yA=0.4
(d) is the correct oprion

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