Question

The vapour pressures 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 the total vapour pressure is 600 mm Hg. Also, find the composition of the vapour phase.

Answer 1

Given:

`"P"_"A"^0` = 450 mm Hg

`"P"_"B"^0` = 700 mm Hg

P_Total = 600 mm Hg

x_A = ?

Applying Raoult's law,

`"P"_"A" = "x"_"A" xx "P"_"A"^0`

`"P"_"B" = "x"_"B" xx "P"_"B"^0 = (1 - "x"_"A")"P"_"B"^0`

`"P"_"Total" = "P"_"A" + "P"_"B"`

= `"x"_"A" xx "P"_"A"^0 + (1 - "x"_"A")"P"_"B"^0`

= `"P"_"B"^0 + ("P"_"A"^0 - "P"_"B"^0)"x"_"A"`

Substituting the given values, we get

600 = 700 + (450 − 700)x_A or 250x_A = 100

or x_A = `100/250` = 0.40

Thus, the composition of the liquid mixture will be

x_A (mole fraction of A) = 0.40

x_B (mole fraction of B) = 1 − 0.40 = 0.60

Calculation of composition in the vapour phase:

`"P"_"A" = "x"_"A" xx "P"_"A"^0`

= 0.40 × 450 mm Hg

= 180 mm Hg

`"P"_"B" = "x"_"B" xx "P"_"B"^0`

= 0.60 × 700 mm Hg

= 420 mm Hg

Mole fraction of A in the vapour phase = `("P"_"A")/("P"_"A" + "P"_"B")`

= ` 180/(180+420)`

= `180/600`

= 0.30

Mole fraction of B in the vapour phase = 1 − 0.30 = 0.70