MEDIUM
Earn 100

A mixture having one mole of N2 (g) and 3 moles of H2 (g) was partially converted into NH3 (g) & final product is a mixture of all the three gases and mixture has a density of 0.497 g/L at 25oC and 1 atm.
(i) What would be the mass of the gaseous mixture of same composition in 22.4 L at STP.
(ii) Calculate composition of this gaseous mixture by volume.
(a)(Mass)STP = 12.145 g
Mole ratio is 1 : 3 : 3
Mole ratio is 1 : 3 : 3
(b)(Mass)STP = 12 g
Mole ratio is 1 : 2 : 3
Mole ratio is 1 : 2 : 3
(c)(Mass)STP = 14 g
Mole ratio is 2 : 3 : 1
Mole ratio is 2 : 3 : 1
(d)(Mass)STP = 15 g
Mole ratio is 1 : 1 : 1
Mole ratio is 1 : 1 : 1

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Important Questions on States of Matter
HARD


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At constant pressure, the volume of a fixed mass of a gas varies as a function on temperature as shown in the graph
The volume of the gas at is larger than that at by a factor of

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HARD
Which one of the following graphs is not correct for ideal gas?
Density, Pressure, Temperature

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[Gas constant, ]

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The volume of gas is twice than that of gas . The compressibility factor of gas is thrice than that of gas at same temperature. What are the pressures of the gases for equal number of moles?

