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Question:
The vapour pressure of pure liquids A and B are 450 and 700 mm Hg respectively, at 350 K. Find out the composition of the liquid mixture if total vapour pressure is 600 mm Hg. Also find the composition of the vapour phase.

Answer:

It is given that:

P_A^o = 450 mm of Hg

P_B^o= 700 mm of Hg

p_total= 600 mm of Hg

From Raoult's law, we have:

p_total= P_A+ P_B

Therefore, x_B = 1 - x_A

= 1 - 0.4

= 0.6

Now, P_A= P_A^ox_A

= 450 × 0.4

= 180 mm of Hg

and P_B= P_B^ox_B

= 700 × 0.6

= 420 mm of Hg

Now, in the vapour phase: Mole fraction of liquid A = P_A/ (P_A+ P_B )

=180 / (180+420)

= 180/600

= 0.30

And, mole fraction of liquid B = 1 - 0.30

= 0.70

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Question:
The vapour pressure of pure liquids A and B are 450 and 700 mm Hg respectively, at 350 K. Find out the composition of the liquid mixture if total vapour pressure is 600 mm Hg. Also find the composition of the vapour phase.

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Question: The vapour pressure of pure liquids A and B are 450 and 700 mm Hg respectively, at 350 K. Find out the composition of the liquid mixture if total vapour pressure is 600 mm Hg. Also find the composition of the vapour phase.

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Question:
The vapour pressure of pure liquids A and B are 450 and 700 mm Hg respectively, at 350 K. Find out the composition of the liquid mixture if total vapour pressure is 600 mm Hg. Also find the composition of the vapour phase.