22.
For gaseous state, if most probable speed is denoted by $${C^ * },$$ average speed by $$\bar C$$ and mean square speed by $$C,$$ then for a large number of molecules the ratios of these speeds are :
23.
Two gases $$A$$ and $$B$$ having the same volume diffuse through a porous partition in 20 and
$$10s$$ respectively. The molecular mass of $$A$$ is $$49\,u.$$ Molecular mass of $$B$$ will be
According to Graham's law of diffusion,
$$\eqalign{
& {\text{rate of diffusion}} \cr
& r \propto \frac{1}{{\sqrt M }},\,r \propto \frac{V}{t} \cr} $$
where, $$V$$ is the volume of the gas diffused in time $$t.$$
$$\eqalign{
& \frac{{{r_A}}}{{{r_B}}} = \sqrt {\frac{{{M_B}}}{{{M_A}}}} \,\,\,{\text{or}}\,\,\,\frac{{{V_A}}}{{{t_A}}} \times \frac{{{t_B}}}{{{V_B}}} = \sqrt {\frac{{{M_B}}}{{{M_A}}}} \cr
& {\text{Given,}}\,\,{V_A} = {V_B} \cr
& \therefore \,\,\,\,\,\,\,\,\,\,\,\frac{{10}}{{20}} = \sqrt {\frac{{{M_B}}}{{49}}} \Rightarrow \frac{1}{4} = \frac{{{M_B}}}{{49}} \cr
& \,\,\,\,\,\,\,\,\,\,\,\,\,\,{M_B} = \frac{{49}}{4} = 12.25\,u \cr} $$
24.
Equal weights of methane and hydrogen are mixed in an empty container at $${25^ \circ }C.$$ The fraction of the total pressure exerted by hydrogen is :
Pressure exerted by hydrogen will be proportional to its mole fraction.
$${\text{Mole fraction of}}\,{H_2} = \frac{{\frac{W}{2}}}{{\frac{W}{{16}} + \frac{W}{2}}} = \frac{8}{9}$$
25.
For one mole of a van der Waals' gas when $$b=0$$ and $$T=300\,K,$$ the $$PV$$ vs $$\frac{1}{V}$$ plot is shown below. The value of the van der Waals' constant $$a$$ $$\left( {atm\,\,litr{e^2}\,\,mo{l^{ - 2}}} \right)$$ is
26.
The root mean square velocity of one mole of a monoatomic gas having molar mass $$M$$ is $${u_{r.m.s}}.$$ The relation between the average kinetic energy $$(E)$$ of the gas and $${u_{r.m.s}}.$$ is
In crystals the constituents ( $$atoms,$$ $$ions$$ or molecules) are arranged in definite orderly arrangement. When these crystals are cleaved they cut into regular patterns.
28.
A mono-atomic ideal gas undergoes a process in which the ratio of $$P$$ to $$V$$ at any instant is constant and equals to 1. What is the molar heat capacity of the gas
30.
Increase in kinetic energy can overcome intermolecular forces of attraction. How will the viscosity of liquid be affected by the increase in temperature ?
Viscosity of liquids decreases as the temperature rises because at high temperature, molecules have high kinetic energy and can overcome the intermolecular forces to slip past one another between the layers.