Liquids A and B form an ideal solution in the entire composition range. At 350K, the vapor pressure of pure A and pure B are `7xx10^(3)` Pa and `12xx10^(3)` Pa, respectively. The composition of the vapor in equilibrium with a solution containing 40 mole percent of A at this temperature is :
Liquids A and B form an ideal solution in the entire composition range. At 350K, the vapour pressures of pure A and B are 9 xx 10^3 Pa and 16 xx 10^3 Pa, respectively. The composition of the vapour in equilibrium with a solution containing 30 mole percent of A at this temperature is:
Liquids A and B form an ideal solution in the entire composition range. At 350K, thee vapour pressures of pure A and B are 7xx10^(3)Pa and 12xx10^(3)Pa , respectively. The total vapour pressure in equilibrium with a solution containing 40 mole percent of A at this temperature is 1xx10^(x)Pa . The numerical value of x is __________.
Two liquids A and B form an ideal soluton. The vapour pressure of pure A and pure B are 66 mm Hg and 88 mm Hg , respectively. Calculate the composition of vapour A in the solution which is equilbrium and whose molar volume is 36% .
Two liquids A and B form an ideal solution of 1 mole of A and x moles of B is 550 mm of Hg. If the vapour pressures of pure A and B are 400 mm of Hg nd 600 mm of Hg respectively. Then x is-
At 20^@C , the vapour pressure of pure liquid A is 22 mm Hg and that of pure liquid B is 75 mm Hg . What is the composition of the solution of these two components that has vapour pressure of 48.5 mm Hg at this temperature?