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Objective Chemistry for NEET

A.K. Singhal, U. K. Singhal

Chapter 5

States of Matter - all with Video Answers

Educators


Chapter Questions

01:01

Problem 1

Which one of the following statements is wrong for gases?
(a) Gases do not have a definite shape and volume
(b) Volume of the gas is equal to volume of container the confining the gas
(c) Confirmed gas exerts uniform pressure on the walls of its container in all directions
(d) Mass of gas cannot be determined by weighing a container in which it is enclosed

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01:01

Problem 2

Which of the following mixture of gases does not obey Dalton's law of partial pressure?
(a) $\mathrm{O}_{2}$ and $\mathrm{CO}_{2}$
(b) $\mathrm{N}_{2}$ and $\mathrm{O}_{2}$
(c) $\mathrm{Cl}_{2}$ and $\mathrm{SO}_{2}$
(d) $\mathrm{NH}_{3}$ and $\mathrm{HCl}$

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01:24

Problem 3

In which of the following pairs, the critical temperature of latter gaseous species is higher than the first?
(a) $\mathrm{CO}_{2}, \mathrm{H}_{2}$
(b) $\mathrm{H}_{2}, \mathrm{NH}_{3}$
(c) $\mathrm{NH}_{3}, \mathrm{He}$
(d) $\mathrm{CO}_{2}, \mathrm{He}$

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01:01

Problem 4

The dimensions of pressure are same as that of:
(a) Energy
(b) Energy per unit volume
(c) Force per unit area
(d) Force per unit volume

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01:12

Problem 5

Ideal gas obeying kinetic theory of gases can be liquefied if:
(a) $\mathrm{T}>\mathrm{T}_{\mathrm{c}}$
(b) $\mathrm{P}>\mathrm{P}$
(c) $\mathrm{P}>\mathrm{P}_{c}$ and $\mathrm{T}<\mathrm{T}_{\mathrm{d}}$
(d) It cannot be liquefied at any value of $\mathrm{P}$ and $\mathrm{T}$.

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01:13

Problem 6

Based on kinetic theory of gases, which of the following laws can be proved?
(a) Boyle's law
(b) Charles law
(c) Avogadro's law
(d) All of these

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00:39

Problem 7

According to the kinetic theory of gases, in an ideal gas, between two successive collisions the gas molecules travels:
(a) In a circular path
(b) In a wavy path
(c) In a straight line path
(d) With an accelerated velocity

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01:14

Problem 8

Which of the following law leads us to arrive at the conclusion that 1 g-molecule of each gas at STP occupies a volume of $22.4 \mathrm{~L}$ ?
(a) Dalton's law
(b) Law of combining volumes
(c) Avogadro's law
(d) Boyle's law

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02:59

Problem 9

$0.1$ mole of gas absorbs $41.75 \mathrm{~J}$ of heat, the rise in temperature occurs $20^{\circ} \mathrm{C}$, the gas must be:
(a) Triatomic
(b) Diatomic
(c) Monoatomic
(d) (b) and (c) both

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01:46

Problem 10

Which pair of the gases diffuses with the same rate at same temperature and pressure?
(a) $\mathrm{CO}$ and $\mathrm{NO}$
(b) $\mathrm{NO}_{2}$ and $\mathrm{CO}$
(c) $\mathrm{NH}_{3}$ and $\mathrm{PH}_{3}$
(d) $\mathrm{NO}^{2}$ and $\mathrm{C}_{2} \mathrm{H}_{6}^{2}$

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01:03

Problem 11

Van der Waals real gas, act as an ideal gas, at which condition?
(a) High temperature, low pressure
(b) Low temperature, high pressure
(c) High temperature, high pressure
(d) Low temperature, low pressure

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01:01

Problem 12

The compressibility factor of an ideal gas is:
(a) 1
(b) 2
(c) 4
(d) 0

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01:03

Problem 13

The temperature below which a gas can be made to liquefy by variation in pressure is called its:
(a) Inversion temperature
(b) Critical temperature
(c) Neutral temperature
(d) Curie point

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01:02

Problem 14

By the ideal gas law the pressure of $0.60 \mathrm{~mol} \mathrm{NH}_{3}$ gas in a $3.00$ litre vessel at $25^{\circ} \mathrm{C}$ is:
(a) $48.9 \mathrm{~atm}$
(b) $4.89 \mathrm{~atm}$
(c) $0.489 \mathrm{~atm}$
(d) $489 \mathrm{~atm}$

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01:01

Problem 15

At what centigrade temperature will be the volume of a gas at $0^{\circ} \mathrm{C}$ double of itself, when pressure remains constant?
(a) $0^{\circ} \mathrm{C}$
(b) $273^{\circ} \mathrm{C}$
(c) $273 \mathrm{~K}$
(d) $546 \mathrm{~K}$

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01:01

Problem 16

Pressure of a mixture of $4 \mathrm{~g}$ of $\mathrm{O}_{2}$ and $2 \mathrm{~g}$ of $\mathrm{H}_{2}$ confined in a bulb of $1.0 \mathrm{~L}$ capacity at $0^{\circ} \mathrm{C}$ is:
(a) $25.18 \mathrm{~atm}$
(b) $31.205 \mathrm{~atm}$
(c) $40.215 \mathrm{~atm}$
(d) $15.210 \mathrm{~atm}$

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01:01

Problem 17

A closed container contains equal number of oxygen and hydrogen molecules at a total pressure of $740 \mathrm{~mm}$. If oxygen is removed from the system then pressure will:
(a) Become double of $740 \mathrm{~mm}$
(b) Become half of $740 \mathrm{~mm}$
(c) Become $1 / 9$ of $740 \mathrm{~mm}$
(d) Remain unchanged

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01:01

Problem 18

The volume occupied by $9.0 \mathrm{~g}$ of nitrogen gas at $300 \mathrm{~K}$ and $750 \mathrm{mmHg}$ pressure is:
(a) $5.854$
(b) $6.7432$
(c) $8.8462$
(d) $8.0225$

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02:42

Problem 19

What are the conditions under which the relation between volume (V) and number of moles (n) of gas is plotted? $(\mathrm{P}=$ pressure; $\mathrm{T}=$ temperature $)$ :
(c) Constant $\mathrm{P}$ and $\mathrm{V}$
(d) Constant $\mathrm{n}$ and $\mathrm{V}$

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02:58

Problem 20

The rms velocity of $\mathrm{CO}_{2}$ at a temperature $\mathrm{T}$ (in Kelvin) is $\times \mathrm{cm} \mathrm{sec}^{-1} .$ At what temperature (in Kelvin), the rms velocity of nitrous oxide would be $4 \times \mathrm{cm} \sec ^{-1}$ ? (Atomic weights of $\mathrm{C}, \mathrm{N}$ and $\mathrm{O}$ are respectively 12 , 14 and 16$)$
(a) $16 \mathrm{~T}$
(b) $2 \mathrm{~T}$
(c) $4 \mathrm{~T}$
(d) $32 \mathrm{~T}$

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01:19

Problem 21

'n' moles of an ideal gas at temperature $\mathrm{T}$ (in Kelvin) occupy ' $\mathrm{V}$ ' litres of volume, exerting a pressure of ' $\mathrm{P}$ ' atomospheres. What is its concentration (in $\mathrm{mol} \mathrm{L}^{-1}$ )? $(\mathrm{R}=$ gas constant $):$
(a) $\mathrm{P} / \mathrm{RT}$
(b) $\mathrm{PT} / \mathrm{R}$
(c) $\mathrm{RT} / \mathrm{P}$
(d) $\mathrm{R} / \mathrm{PT}$

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Maryam Shahid
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01:36

Problem 22

$7.5 \mathrm{~g}$ of gas occupy $5.6$ litres of volume at STP. The gas is (Atomic weight of $\mathrm{C}, \mathrm{N}$, and $\mathrm{O}$ are 12,14 and $16 \mathrm{re}-$ spectively):
(a) $\mathrm{NO}$
(b) $\mathrm{N}_{2} \mathrm{O}$
(c) CO
(d) $\mathrm{CO}_{2}$

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02:44

Problem 23

A gas diffuses four times as quickly as oxygen. The molar weight of gas is:
(a) 2
(b) 4
(c) 8
(d) 16

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01:01

Problem 24

Compressibility factor for 1 mol of a van der Waals gas at $0^{\circ} \mathrm{C}$ and 100 atmospheric pressure is found to be $0.5$, the volume of gas molecule is:
(a) $2.0224 \mathrm{~L}$
(b) $1.4666 \mathrm{~L}$
(c) $0.8542 \mathrm{~L}$
(d) $0.1119 \mathrm{~L}$

Narayan Hari
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00:27

Problem 25

The density of air is $0.001293 \mathrm{~g} / \mathrm{cc}$ at STP. Its vapour density is:
(a) $0.001293$
(b) $8.2786$
(c) $14.48$
(d) $6.2706$

Mishal Gul
Mishal Gul
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01:12

Problem 26

At $27^{\circ} \mathrm{C}$, a closed vessel contains a mixture of equal weights of helium (mol. wt. $=4$ ), methane (mol. wt. =
16) and sulphur dioxide (mol. wt. = 64). The pressure exerted by the mixture is $210 \mathrm{~mm}$. If the partial pressures of helium, methane and sulphur dioxide are $\mathrm{P}_{1}, \mathrm{P}_{2}$ and $\mathrm{P}_{3}$ respectively, which one of the following is correct?
(a) $\mathrm{P}_{3}>\mathrm{P}_{2}>\mathrm{P}_{1}$
(b) $\mathrm{P}_{1}>\mathrm{P}_{2}>\mathrm{P}_{3}$
(c) $\mathrm{P}_{1}>\mathrm{P}_{3}>\mathrm{P}_{2}$
(d) $\mathrm{P}_{2}>\mathrm{P}_{3}>\mathrm{P}_{1}$

Mishal Gul
Mishal Gul
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03:04

Problem 27

$4 \mathrm{~g}$ of an ideal gas occupies $5.6035$ litres of volume at $546 \mathrm{~K}$ and $2 \mathrm{~atm}$ pressure. What is its molecular weight?
(a) 4
(b) 16
(c) 32
(d) 64

Maryam Shahid
Maryam Shahid
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01:01

Problem 28

The kinetic energy of 4 moles of nitrogen gas at $127^{\circ} \mathrm{C}$ is $\ldots \ldots . .$ Kcals. $\left(\mathrm{R}=2 \mathrm{cal} \mathrm{mol}^{-1} \mathrm{~K}^{-1}\right)$ :
(a) 4400
(b) 3200
(c) 4800
(d) 1524

Narayan Hari
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00:36

Problem 29

If a gas contains only three molecules that move with velocities of $100,200,500 \mathrm{~ms}^{-1}$, what is the $\mathrm{rms}$ velocity of the gas is $\mathrm{ms}^{-1}$ ?
(a) $100 \sqrt{8 / 3}$
(b) $100 \sqrt{30}$
(c) $100 \sqrt{10}$
(d) $800 / 3$

Mishal Gul
Mishal Gul
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01:02

Problem 30

A gaseous mixture contains $56 \mathrm{~g}$ of $\mathrm{N}_{2}, 44 \mathrm{~g}$ of $\mathrm{CO}_{2}$ and $16 \mathrm{~g}$ of $\mathrm{CH}_{4}$. The total pressure of mixture is $720 \mathrm{~mm}$ of $\mathrm{Hg}$. The partial pressure of methane is:
(a) $75 \mathrm{~mm}$
(b) $160 \mathrm{~mm}$
(c) $180 \mathrm{~mm}$
(d) $215 \mathrm{~mm}$

Narayan Hari
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01:01

Problem 31

At $25^{\circ} \mathrm{C}$ and $730 \mathrm{~mm}$ pressure, $380 \mathrm{~mL}$ of dry oxygen was collected. If the temperature is constant, what volume will the oxygen occupy at $760 \mathrm{~mm}$ pressure?
(a) $365 \mathrm{~mL}$
(b) $2 \mathrm{~mL}$
(c) $10 \mathrm{~mL}$
(d) $20 \mathrm{~mL}$

Narayan Hari
Narayan Hari
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00:43

Problem 32

The density of an ideal gas is $0.03 \mathrm{~g} \mathrm{~cm}^{-3}$, Its pressure is $106 \mathrm{~g} \mathrm{~cm}^{-1} \mathrm{sec}^{-2}$. What is its $\mathrm{rms}$ velocity (in $\left.\mathrm{cm} \mathrm{sec}^{-1}\right) ?$
(a) $10^{3}$
(b) $3 \times 10^{4}$
(c) $10^{8}$
(d) $10^{4}$

Mishal Gul
Mishal Gul
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01:02

Problem 33

At a certain pressure, volume of a gas at $27^{\circ} \mathrm{C}$ is 20 litre. If the pressure and temperature are doubled, its volume will be:
(a) 20 litre
(b) 40 litre
(c) $8.2$ litre
(d) $10.9$ litre

Narayan Hari
Narayan Hari
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00:37

Problem 34

A and B are ideal gases. The molecular weights of A and $\mathrm{B}$ are in the ratio of $1: 4 .$ The pressure of a gas mixture containing equal weights of $\mathrm{A}$ and $\mathrm{B}$ is $\mathrm{P} \mathrm{atm}$. What is the partial pressure (in $\mathrm{atm}$ ) of $\mathrm{B}$ in the mixture?
(a) $\mathrm{P} / 5$
(b) $\mathrm{P} / 2$
(c) $\mathrm{P} / 2.5$
(d) $3 \mathrm{P} / 4$

Mishal Gul
Mishal Gul
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02:30

Problem 35

A gas has double the average velocity of $\mathrm{SO}_{2}$ gas at any temperature. The gas may be:
(a) $\mathrm{CO}_{2}$
(b) $\mathrm{C}_{2} \mathrm{H}_{4}$
(c) $\mathrm{CH}_{4}^{2}$
(d) $\mathrm{O}_{2}$

Maryam Shahid
Maryam Shahid
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01:02

Problem 36

If two moles of ideal gas at $540 \mathrm{~K}$ has volume $44.8 \mathrm{~L}$, then its pressure will be:
(a) 1 atm
(b) $2 \mathrm{~atm}$
(c) $3 \mathrm{~atm}$
(d) $4 \mathrm{~atm}$

Narayan Hari
Narayan Hari
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01:02

Problem 37

The densities of two gases are in the ratio of $1: 16 .$ The ratio of their rates of diffusion is:
(a) $16: 1$
(b) $4: 1$
(c) $1: 4$
(d) $1: 16$

Narayan Hari
Narayan Hari
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01:01

Problem 38

The critical temperature of water is higher than that of
$\mathrm{O}_{2}$ because the $\mathrm{H}_{2} \mathrm{O}$ molecule has:
(a) Fewer electrons than $\mathrm{O}_{2}$
(b) Two covalent bonds
(c) V-shape
(d) Dipole moment

Narayan Hari
Narayan Hari
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01:15

Problem 39

If pressure of 2 mol of an ideal gas at $546 \mathrm{~K}$ having volume $44.8$ litre is:
(a) $2 \mathrm{~atm}$
(b) $3 \mathrm{~atm}$
(c) $4 \mathrm{~atm}$
(d) $\mathrm{I} \mathrm{atm}$

Maryam Shahid
Maryam Shahid
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01:04

Problem 40

A gas behaves most like an ideal gas under conditions of:
(a) High pressure and low temperature
(b) High temperature and high pressure
(c) Low pressure and high temperature
(d) Low pressure and low temperature

Maryam Shahid
Maryam Shahid
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00:42

Problem 41

At constant volume and temperature conditions, the rates of diffusion $D_{A}$ and $D_{B}$ of gases $A$ and $B$ having densities $\rho_{A}$ and $\rho_{B}$ are related by the expression:
(a) $\mathrm{D}_{\mathrm{A}}=\left[\mathrm{D}_{\mathrm{B}} \rho_{A} / \rho_{\mathrm{B}}\right]^{1 / 2}$
(b) $\mathrm{D}_{\mathrm{A}}=\left[\mathrm{D}_{\mathrm{B}} \rho_{\mathrm{B}} / \rho_{\mathrm{A}}\right]^{1 / 2}$
(c) $\mathrm{D}_{\mathrm{A}}=\mathrm{D}_{\mathrm{B}}\left[\rho_{A} / \rho_{\mathrm{B}}\right]^{1 / 2}$
(d) $\mathrm{D}_{\mathrm{A}}=\mathrm{D}_{\mathrm{B}}\left[\rho_{\mathrm{B}} / \rho_{\mathrm{A}}\right]^{1 / 2}$

Mishal Gul
Mishal Gul
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01:03

Problem 42

The term that accounts for intermolecular force in van der Waals equation for non-ideal gas is:
(a) RT
(b) $\mathrm{V}-\mathrm{b}$
(c) $\left(\mathrm{P}+\alpha / \mathrm{V}^{2}\right)$
(d) $(\mathrm{RT})^{-1}$

Narayan Hari
Narayan Hari
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01:03

Problem 43

A bottle of dry ammonia and a bottle of dry hydrogen chloride connected through a long tube are opened simultaneously at both ends, the white ammonium chloride ring first formed will be:
(a) At the centre of the tube
(b) Near the hydrogen chloride bottle
(c) Near the ammonia bottle
(d) Throughout the length of the tube

Narayan Hari
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01:01

Problem 44

If a gas expands at constant temperature:
(1) The pressure decreases
(2) The kinetic energy of the molecules remains the same
(3) The kinetic energy of the molecules decreases
(4) The number of molecules of the gas increase
(a) 1,2
(b) $1,2,3$
(c) $1,2,4$
(d) 2,3

Narayan Hari
Narayan Hari
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01:13

Problem 45

The temperature at which real gases obey the ideal gas laws over a wide range of pressure is called:
(a) Critical temperature
(b) Boyle's temperature
(c) Inversion temperature
(d) Reduced temperature

Maryam Shahid
Maryam Shahid
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00:41

Problem 46

As the temperature is raised from $20^{\circ} \mathrm{C}$ to $40^{\circ} \mathrm{C}$, the average kinetic energy of neon atoms changes by a factor of which of the following?
(a) $1 / 2$
(b) 2
(c) $\sqrt{313 / 293}$
(d) $313 / 293$

Mishal Gul
Mishal Gul
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01:02

Problem 47

According to Boyle's law:
(a) $(\mathrm{dP} / \mathrm{dV})_{\mathrm{T}}=-\mathrm{K} / \mathrm{P}^{2}$
(b) $(\mathrm{dP} / \mathrm{dV})_{\mathrm{T}}=\mathrm{K} / \mathrm{V}$
(c) $(\mathrm{dV} / \mathrm{dP})_{\mathrm{T}}=-\mathrm{K} / \mathrm{P}^{2}$
(d) $(\mathrm{dV} / \mathrm{dP})_{\mathrm{T}}=-\mathrm{K} / \mathrm{P}$

Narayan Hari
Narayan Hari
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01:01

Problem 48

The values of van der Waals constant ' $\alpha$ ' for the gases $\mathrm{O}_{2}, \mathrm{~N}_{2}, \mathrm{NH}_{3}$ and $\mathrm{CH}_{4}$ are $1.360,1.390,4.170$ and
$2.253 \mathrm{~L}$ atm. $\mathrm{mol}^{-2}$ respectively. The gas which can most easily be liquefied is:
(a) $\mathrm{O}_{2}$
(b) $\mathrm{N}_{2}$
(c) $\mathrm{NH}_{3}$
(d) $\mathrm{CH}_{4}$

Narayan Hari
Narayan Hari
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00:56

Problem 49

To which of the following gaseous mixtures is Dalton's law not applicable?
(a) $\mathrm{Ne}+\mathrm{He}+\mathrm{SO}_{2}$
(b) $\mathrm{NH}_{3}+\mathrm{HCl}$
(c) $\mathrm{O}_{2}+\mathrm{N}_{2}+\mathrm{CO}_{2}^{2}$
(d) $\mathrm{N}_{2}+\mathrm{H}_{2}+\mathrm{O}_{2}$

Maryam Shahid
Maryam Shahid
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01:01

Problem 50

The ratio of rate of diffusion of helium with respect to methane under similar conditions of constant temperature and pressure:
(a) 2
(b) $0.5$
(c) 16
(d) 4

Maryam Shahid
Maryam Shahid
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01:01

Problem 51

The density of neon will be highest at:
(a) STP
(b) $0^{\circ} \mathrm{C}, 2 \mathrm{~atm}$
(c) $273^{\circ} \mathrm{C}, 1 \mathrm{~atm}$
(d) $273^{\circ} \mathrm{C}, 2 \mathrm{~atm}$

Narayan Hari
Narayan Hari
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01:02

Problem 52

At constant volume for a fixed number of a moles of gas, the pressure of the gas increases with the rise in temperature due to:
(a) Increase in average molecular speed
(b) Increase in rate of collisions
(c) Increase in molecular attraction
(d) Increase in mean free path

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00:29

Problem 53

Four one litre flasks are separately filled with the gases $\mathrm{O}_{2}, \mathrm{~F}_{2}, \mathrm{CH}_{4}$ and $\mathrm{CO}_{2}$ under same conditions. The ratio of the number of molecules in these gases are:
(a) $2: 2: 4: 3$
(b) $1: 1: 1: 1$
(c) $1: 2: 3: 4$
(d) $2: 2: 3: 4$

Mishal Gul
Mishal Gul
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01:01

Problem 54

An ideal gas expands according to $\mathrm{PV}=$ constant. On expansion, the temperature of gas:
(a) Will rise
(b) Will drop
(c) Will remain constant
(d) Cannot be determined because the external pressure is not known

Narayan Hari
Narayan Hari
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02:08

Problem 55

Which of the following is true about $\mathrm{u}_{\mathrm{ras}}, \mathrm{u}, \alpha ?$
(a) $\mathrm{u}_{\mathrm{rms}}>\overline{\mathrm{u}}>\alpha$
(b) urms $<\overline{\mathrm{u}}<\alpha$
(c) $\mathrm{u}_{\mathrm{rms}}>\overline{\mathrm{u}}<\alpha$
(d) urms $<\overline{\mathrm{u}}>\alpha$

Maryada Jain
Maryada Jain
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01:04

Problem 56

According to the kinetic theory of gases:
(a) The pressure exerted by a gas is proportional to mean square velocity of the molecules
(b) The pressure exerted by the gas is proportional to the root mean square velocity of the molecules
(c) The root mean square velocity is inversely proportional to the temperature
(d) The mean translational K.E. of the molecule is directly proportional to the absolute temperature.

Narayan Hari
Narayan Hari
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02:24

Problem 57

$6.4 \mathrm{~g} \mathrm{SO}_{2}$ at $0^{\circ} \mathrm{C}$ and $0.99 \mathrm{~atm}$ pressure occupies a volume of $2.241 \mathrm{~L}$. Predict which of the following is correct?
(a) The gas is ideal
(b) The gas is real with intermolecular attraction
(c) The gas is real without intermolecular repulsion
(d) The gas is real with intermolecular repulsion greater than intermolecular attraction

Maryam Shahid
Maryam Shahid
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00:32

Problem 58

$\mathrm{V}$ vs $\mathrm{T}$ curves at constant pressure $\mathrm{P}_{1}$ and $\mathrm{P}_{2}$ for an ideal gas are shown below.
Which of the following is correct?
(a) $\mathrm{P}_{1}>\mathrm{P}_{2}$
(b) $\mathrm{P}_{1}<\mathrm{P}_{2}$
(c) $\mathrm{P}_{1}=\mathrm{P}_{2}$
(d) All of above

Mishal Gul
Mishal Gul
Numerade Educator
01:01

Problem 59

If increase in temperature and volume of an ideal gas is two times, then the initial pressure P changes to:
(a) $4 \mathrm{P}$
(b) $2 \mathrm{P}$
(c) $\mathrm{P}$
(d) $3 \overline{\mathrm{P}}$

Narayan Hari
Narayan Hari
Numerade Educator
01:20

Problem 60

What is the ratio of kinetic energies of $3 \mathrm{~g}$ of hydrogen and $4 \mathrm{~g}$ of oxygen at $\mathrm{T}(\mathrm{K})$ ?
(a) $12: 1$
(b) $6: 1$
(c) $1: 6$
(d) $24: 1$

Maryam Shahid
Maryam Shahid
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01:25

Problem 61

The van der Waals equation of state is:
$$
\mathrm{P}+\frac{(\mathrm{V}-\mathrm{nb})}{\mathrm{V}^{2}}=\mathrm{nRT}
$$
The pressure exerted by individual gas molecules on the walls of the container depends upon the
(a) Frequency of the collisions of the molecules with the walls as well as the momentum imparted by the molecules to the walls
(b) Frequency of molecular collision
(c) Mean free path of the molecules
(d) Momentum and critical pressure of the gas molecules

Narayan Hari
Narayan Hari
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01:01

Problem 62

The density of a gas is $1.964 \mathrm{~g} \mathrm{dm}^{-3}$ at $273 \mathrm{~K}$ and $76 \mathrm{~cm} \mathrm{Hg}$. The gas is:
(a) $\mathrm{CH}_{4}$
(b) $\mathrm{C}_{2} \mathrm{H}_{6}$
(c) $\mathrm{CO}_{2}$
(d) $\mathrm{Xe}$

Narayan Hari
Narayan Hari
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01:11

Problem 63

Two gas bulbs $\mathrm{A}$ and $\mathrm{B}$ are connected by a tube having a stopcock. Bulb A has a volume of $100 \mathrm{~mL}$ and contains hydrogen. After opening the gas from $\mathrm{A}$ to the evacuated bulb B, the pressure falls down by $40 \%$. The volume $(\mathrm{mL})$ of B must be:
(a) 75
(b) 150
(c) 125
(d) 200

Narayan Hari
Narayan Hari
Numerade Educator
01:10

Problem 64

At $27^{\circ} \mathrm{C}, 500 \mathrm{~mL}$ of helium diffuses in 30 minutes. What is the time (in hours) taken for $1000 \mathrm{~mL}$ of $\mathrm{SO}_{2}$ to diffuse under same experimental conditions?
(a) 240
(b) 340
(c) 200
(d) 440

Narayan Hari
Narayan Hari
Numerade Educator
01:04

Problem 65

If two moles of an ideal gas at a temperature $546 \mathrm{~K}$, occupy a volume of $44.8$ litres its pressure must be:
(a) $4 \mathrm{~atm}$
(b) $3 \mathrm{~atm}$
(c) $2 \mathrm{~atm}$
(d) 1 atm

Narayan Hari
Narayan Hari
Numerade Educator
01:01

Problem 66

The following graph illustrates:
(a) Boyle's law
(b) Charles law
(c) Dalton's law
(d) Gay-Lussac's law

Narayan Hari
Narayan Hari
Numerade Educator
01:22

Problem 67

Containers $\mathrm{A}$ and $\mathrm{B}$ have same gases. Pressure, volume and temperature of $\mathrm{A}$ are all twice that $\mathrm{B}$, then the ratio of number of molecules of $\mathrm{A}$ and $\mathrm{B}$ are:
(a) $1: 2$
(b) 2
(c) $1: 4$
(d) 4

Narayan Hari
Narayan Hari
Numerade Educator
01:17

Problem 68

Which one of the following statement is not true about the effect of an increase in temperature on the distribution molecular speeds in a gas?
(a) The most probable speed increases
(b) The fraction of the molecules with the most probable speed increases
(c) The distribution becomes broader
(d) The area under the distribution curve remains the same as the under the lower temperature

Mishal Gul
Mishal Gul
Numerade Educator
01:00

Problem 69

A general form of equation of state for gases is $\mathrm{PV}=$ $\mathrm{RT}\left[\mathrm{A}+\mathrm{B} / \mathrm{V}+\mathrm{C} / \mathrm{V}^{2}+\ldots\right]$, where $\mathrm{V}$ is the molar
volume of the gas and $\mathrm{A}, \mathrm{B}, \mathrm{C} \ldots \ldots$ are constants for the gas. The values of $\mathrm{A}$ and $\mathrm{B}$, if the gas obeys van der Waals equation, are respectively:
(a) $1, \frac{a}{27 b}$
(b) $1, \mathrm{~b}-\frac{\mathrm{a}}{\mathrm{RT}}$
(c) $\frac{a}{\mathrm{RT}}, \mathrm{b}$
(d) $\frac{2 a}{R T}, b$

Mishal Gul
Mishal Gul
Numerade Educator
01:04

Problem 70

If the rms velocity of a gas at $100 \mathrm{~K}$ is $10^{4} \mathrm{~cm} \mathrm{sec}^{-1}$, what is the temperature (in ${ }^{\circ} \mathrm{C}$ ) at which the $\mathrm{rms}$ velocity will be $3 \times 10^{4} \mathrm{~cm} \mathrm{sec}^{-1} ?$
(a) 900
(b) 627
(c) 327
(d) 1217

Narayan Hari
Narayan Hari
Numerade Educator
01:15

Problem 71

For which of the following parameters the structural isomers $\mathrm{C}_{2} \mathrm{H}_{5} \mathrm{OH}$ and $\mathrm{CH}_{3} \mathrm{OCH}_{3}$ would be expected to have the same values? (assume ideal behaviour):
(a) Gaseous densities at the same temperature and pressure
(b) Heat of vaporization
(c) Boiling points
(d) Vapour pressure at the same temperature

Mishal Gul
Mishal Gul
Numerade Educator
00:16

Problem 72

Which curve does not represent Boyle's law?

Mishal Gul
Mishal Gul
Numerade Educator
01:09

Problem 73

At what temperature, the rate of diffusion of $\mathrm{N}_{2}$ would be $1.625$ times the rate of effusion of $\mathrm{SO}_{2}$ at $50^{\circ} \mathrm{C}$ ?
(a) $110 \mathrm{~K}$
(b) $173 \mathrm{~K}$
(c) $373 \mathrm{~K}$
(d) $273 \mathrm{~K}$

Narayan Hari
Narayan Hari
Numerade Educator
00:34

Problem 74

$0.24 \mathrm{~g}$ of a volatile gas upon vaporization gives $45 \mathrm{~mL}$ vapour at NTP. What will be the vapour density of the substances? (density of $\mathrm{H}_{2}=1$ ):
(a) $95.39$
(b) $5.973$
(c) $95.93$
(d) $59.73$

Mishal Gul
Mishal Gul
Numerade Educator
00:24

Problem 75

A monoatomic ideal gas undergoes a process in which the ratio of $\mathrm{P}$ to $\mathrm{V}$ at any instant is constant and equals to $1 .$ What is the molar heat capacity of the gas?
(a) $4 \mathrm{R} / 2$
(b) $3 \mathrm{R} / 2$
(c) $5 \mathrm{R} / 2$
(d) 0

Mishal Gul
Mishal Gul
Numerade Educator
00:47

Problem 76

$\mathrm{X} \mathrm{mL}$ of $\mathrm{H}_{2}$ has effused through a hole in a container in 5 seconds. The time taken for the effusion of the same volume of the gas specified below under identical conditions is:
(a) 10 seconds:He
(b) 20 seconds: $\mathrm{O}_{2}$
(c) 25 seconds:CO
(d) 55 seconds: $\mathrm{CO}_{2}$

Mishal Gul
Mishal Gul
Numerade Educator
01:08

Problem 77

The ratio between the root mean square velocity of $\mathrm{H}_{2}$ at $50 \mathrm{~K}$ and that of $\mathrm{O}_{2}$ at $800 \mathrm{~K}$ is:
(a) 4
(b) 2
(c) 1
(d) $\frac{1}{4}$

Ajay Singhal
Ajay Singhal
Numerade Educator
01:55

Problem 78

If $C_{1}, C_{2}, C_{3} \ldots \ldots \ldots$ represents the speed of $n_{1}, n_{2}, n_{3}$ .... molecules, then the root mean square of speed is:
(a) $\left(\frac{\mathrm{n}_{1} \mathrm{C}_{1}^{2}+\mathrm{n}_{2} \mathrm{C}_{2}^{2}+\mathrm{n}_{3} \mathrm{C}_{3}^{2}+\ldots}{\mathrm{n}_{1}+\mathrm{n}_{2}+\mathrm{n}_{3}+\ldots}\right)^{12}$
(b) $\left(\frac{\mathrm{n}_{1} \mathrm{C}_{1}^{2}+\mathrm{n}_{2} \mathrm{C}_{2}^{2}+\mathrm{n}_{3} \mathrm{C}_{3}^{2}+\ldots}{\mathrm{n}_{1}+\mathrm{n}_{2}+\mathrm{n}_{3}+\ldots}\right)^{2}$
(c) $\frac{\left(\mathrm{n}_{1} \mathrm{C}_{1}^{2}\right)^{1 / 2}}{\mathrm{n}_{1}}+\frac{\left(\mathrm{n}_{2} \mathrm{C}_{2}^{2}\right)^{1 / 2}}{\mathrm{n}_{2}}+\frac{\left(\mathrm{n}_{3} \mathrm{C}_{3}^{2}\right)^{1 / 2}}{\mathrm{n}_{3}}+\ldots$
(d) $\left[\frac{\left(\mathrm{n}_{1} \mathrm{C}_{1}+\mathrm{n}_{2} \mathrm{C}_{2}+\mathrm{n}_{3} \mathrm{C}_{3}+\ldots\right)^{2}}{\mathrm{n}_{1}+\mathrm{n}_{2}+\mathrm{n}_{3}+\ldots}\right]^{1 / 2}$

Maryada Jain
Maryada Jain
Numerade Educator
01:37

Problem 79

The root mean square velocity of an ideal gas at constant pressure varies with density (d) as:
(a) $\mathrm{d}^{2}$
(b) $\mathrm{d}$
(c) $\sqrt{d}$
(d) $\frac{1}{\sqrt{\mathrm{d}}}$

Maryada Jain
Maryada Jain
Numerade Educator
01:01

Problem 80

The average velocity of ideal gas molecules at $27^{\circ} \mathrm{C}$ is $0.3 \mathrm{~m} / \mathrm{sec}$. The average velocity at $927^{\circ} \mathrm{C}$ will be:
(a) $0.6 \mathrm{~m} / \mathrm{sec}$
(b) $0.3 \mathrm{~m} / \mathrm{sec}$
(c) $0.9 \mathrm{~m} / \mathrm{sec}$
(d) $3.0 \mathrm{~m} / \mathrm{sec}$

Narayan Hari
Narayan Hari
Numerade Educator
01:10

Problem 81

If the rate of effusion of helium gas at a pressure of 1000 torr is 10 torr $\min ^{-1}$. Find the rate of effusion of hydrogen gas at a pressure of 2000 torr at the same temperature.
(a) 20 torr $\mathrm{min}^{-1}$
(b) 10 torr $\min ^{-1}$
(c) $30 \sqrt{2}$ torr $\min ^{-1}$
(d) $20 \sqrt{2}$ torr $\mathrm{min}^{-1}$

Narayan Hari
Narayan Hari
Numerade Educator
01:02

Problem 82

The rate of diffusion of methane at a given temperature is twice that of a gas $\mathrm{X}$. The molecular weight of $\mathrm{X}$ is:
(a) $64.0$
(b) $32.0$
(c) $4.0$
(d) $8.0$

Narayan Hari
Narayan Hari
Numerade Educator
00:51

Problem 83

An ideal gas obeying kinetic gas equation can be liquefied if:
(a) It cannot be liquefied at any value of $\mathrm{P}$ and $\mathrm{T}$
(b) Its temperature is more than Boyle's temperature
(c) Its temperature is more than critical temperature
(d) Its pressure is more than critical pressure

Mishal Gul
Mishal Gul
Numerade Educator
01:05

Problem 84

Equal masses of methane and hydrogen are mixed in an empty container at $25^{\circ} \mathrm{C}$. The fraction of the total pressure exerted by hydrogen is:
(a) $1 / 2$
(b) $8 / 9$
(c) $1 / 9$
(d) $16 / 17$

Narayan Hari
Narayan Hari
Numerade Educator
01:16

Problem 85

Helium atom is two times heavier than a hydrogen molecule. At $298 \mathrm{~K}$, the average kinetic energy of a helium atom is:
(a) Same as that of a hydrogen molecule
(b) Half that of a hydrogen molecule
(c) Two times that of a hydrogen molecule
(d) Four times that of a hydrogen molecule

Narayan Hari
Narayan Hari
Numerade Educator
00:15

Problem 86

The correct representation of Charle's law is given in:

Mishal Gul
Mishal Gul
Numerade Educator
01:20

Problem 87

A $2.24 \mathrm{~L}$ cylinder of oxygen at NTP is found to develop a leakage. When the leakage was plugged the pressure dropped to $570 \mathrm{~mm}$ of $\mathrm{Hg}$. The number of moles of gas that escaped will be:
(a) $0.050$
(b) $0.025$
(c) $0.075$
(d) $0.01$

Narayan Hari
Narayan Hari
Numerade Educator
00:17

Problem 88

Distribution of fraction of molecules with velocity is represented in the figure. The velocity corresponding to point $\mathrm{X}$ is
(a) $\sqrt{\frac{2 R T}{\mathrm{M}}}$
(b) $\sqrt{\frac{3 R T}{M}}$
(c) $\sqrt{\left(\frac{8 R T}{\pi M}\right)}$
(d) None of the above

Mishal Gul
Mishal Gul
Numerade Educator
01:09

Problem 89

A balloon having weight $50 \mathrm{~kg}$ is filled with $685.2 \mathrm{~kg}$ of helium gas at $760 \mathrm{~mm}$ pressure and $25^{\circ} \mathrm{C}$. What will be its pay load if it displaces $5108 \mathrm{~kg}$ of air?
(a) $4372.8 \mathrm{~kg}$
(b) $4392.6 \mathrm{~kg}$
(c) $4444.4 \mathrm{~kg}$
(d) $3482.9 \mathrm{~kg}$

Narayan Hari
Narayan Hari
Numerade Educator
01:09

Problem 90

For non-zero value of force of attraction between gas molecules, gas equation will be:
(a) $\mathrm{PV}=\mathrm{nRT}-\frac{\mathrm{n}^{2}}{\mathrm{~V}} \mathrm{a}$
(b) $\mathrm{PV}=\mathrm{nRT}+\mathrm{nbP}$
(c) $\mathrm{P}=\frac{\mathrm{nRT}}{\mathrm{V}-\mathrm{b}}$
(d) $\mathrm{PV}=\mathrm{nRT}$

Narayan Hari
Narayan Hari
Numerade Educator
01:01

Problem 91

Four rubber tubes are respectively filled with $\mathrm{H}_{2}, \mathrm{He}$, $\mathrm{N}_{2}$ and $\mathrm{O}_{2} .$ Which tube will be reinflated first?
(a) $\mathrm{H}_{2}$ filled tube
(b) $\mathrm{N}_{2}$ filled tube
(c) He filled tube
(d) $\mathrm{O}_{2}$ filled tube

Narayan Hari
Narayan Hari
Numerade Educator
01:01

Problem 92

A gas has the van der Waals constants, $\mathrm{a}=1.49 \mathrm{~L}^{2}$ $\mathrm{atm} \mathrm{mol}^{-2}$ and $\mathrm{b}=0.04 \mathrm{~L} \mathrm{~mol}^{-1} .$ Its Boyle's temperature
is nearly:
(a) $50^{\circ} \mathrm{C}$
(b) $354^{\circ} \mathrm{C}$
(c) $454 \mathrm{~K}$
(d) $408 \mathrm{~K}$

Narayan Hari
Narayan Hari
Numerade Educator
00:41

Problem 93

A monoatomic gas ' $\mathrm{A}$ ' and a diatomic gas ' $\mathrm{B}$ ', both initially at the same temperature and pressure are compressed adiabatically from a volume $\mathrm{V}$ to $\mathrm{V} / 2$. The gas which has higher temperature is:
(a) B
(b) A
(c) Both have same temperature
(d) Can not be said

Mishal Gul
Mishal Gul
Numerade Educator
01:08

Problem 94

One litre of gas $\mathrm{A}$ at 2 atm pressure at $27^{\circ} \mathrm{C}$ and two litres of gas $\mathrm{B}$ at 3 atm pressure at $127^{\circ} \mathrm{C}$ are mixed in a 4 litre vessel. The temperature of the mixture is maintained at $327^{\circ} \mathrm{C}$. What is the total pressure of the gaseous mixture?
(a) $3.93 \mathrm{~atm}$
(b) $3.25 \mathrm{~atm}$
(c) $4.25 \mathrm{~atm}$
(d) $6.25 \mathrm{~atm}$

Narayan Hari
Narayan Hari
Numerade Educator
00:27

Problem 95

Pressure vs density curve for an ideal gas at two different temperatures $\mathrm{T}_{1}$ and $\mathrm{T}_{2}$ is shown below. Which is the correct relation here?
(a) $\mathrm{T}_{1} \cdot \mathrm{T}_{2}$
(b) $\mathrm{T}_{1}<\mathrm{T}_{2}$
(c) $\mathrm{T}_{1}=\mathrm{T}_{2}$
(d) Cannot be said

Mishal Gul
Mishal Gul
Numerade Educator
00:48

Problem 96

The maximum number of molecules is present in:
(a) $15 \mathrm{~L}$ of $\mathrm{H}_{2}$ gas at STP
(b) $5 \mathrm{~L}$ of $\mathrm{N}_{2}$ gas at $\mathrm{STP}$
(c) $0.5 \mathrm{~g}$ of $\mathrm{H}_{2}$ gas
(d) $10 \mathrm{~g}$ of $\mathrm{O}_{2}$ gas

Mishal Gul
Mishal Gul
Numerade Educator
01:06

Problem 97

The root mean square velocity of one mole of a monoatomic gas having molar mass $\mathrm{M}$ is $\mathrm{u}_{\mathrm{rms}}$ -
The relation between the average kinetic energy (E) of the gas and $\mathrm{u}_{\mathrm{rms}}$ is:
(a) $\mathrm{u}_{\mathrm{rms}}=\sqrt{(3 \mathrm{E} / 2 \mathrm{M})}$
(b) $\mathrm{u}_{\mathrm{mas}}=\sqrt{(2 \mathrm{E} / 3 \mathrm{M})}$
(c) $\mathrm{u}_{\mathrm{rms}}=\sqrt{(2 \mathrm{E} / \mathrm{M})}$
(d) $\mathrm{u}_{\mathrm{mas}}=\sqrt{(\mathrm{E} / 3 \mathrm{M})}$

Mishal Gul
Mishal Gul
Numerade Educator
01:01

Problem 98

Positive deviation from ideal behaviour takes place because of:
(a) Molecular interaction between atoms and $\frac{\mathrm{PV}}{\mathrm{nRT}}>1$
(b) Molecular interaction between atoms and $\frac{\mathrm{PV}}{\mathrm{nRT}}<1$
(c) Finite size of atoms and $\frac{\mathrm{PV}}{\mathrm{nRT}}>1$
(d) Finite size of atoms and $\frac{\mathrm{PV}}{\mathrm{nRT}}<1$

Narayan Hari
Narayan Hari
Numerade Educator
00:46

Problem 99

At a certain temperature for which $\mathrm{RT}=25 \mathrm{~L}$ atm. $\mathrm{mol}^{-1}$, the density of a gas, in $\mathrm{g} \mathrm{L}^{-1}$, is $\mathrm{d}=2.00 \mathrm{P}+$
$0.020 \mathrm{P}^{2}$, where $\mathrm{P}$ is the pressure in atmosphere. The molecular weight of the gas in $\mathrm{g}$ mol- 1 is:
(a) 60
(b) 75
(c) 50
(d) 35

Mishal Gul
Mishal Gul
Numerade Educator
01:08

Problem 100

At $100^{\circ} \mathrm{C}$ and $1 \mathrm{~atm}$, if the density of liquid water is $1.0 \mathrm{~g} \mathrm{~cm}^{-3}$ and that of water vapour is $0.0006 \mathrm{~g} \mathrm{~cm}^{-3}$,
then the volume occupied by water molecules in 1 litre of steam at that temperature:
(a) $6 \mathrm{~cm}^{3}$
(b) $60 \mathrm{~cm}^{3}$
(c) $0.6 \mathrm{~cm}^{3}$
(d) $0.06 \mathrm{~cm}^{3}$

Narayan Hari
Narayan Hari
Numerade Educator
01:14

Problem 101

The compressibility factor of a gas is less than unity at STP. Therefore:
(a) $\mathrm{V}_{\mathrm{m}}>22.4 \mathrm{~L}$
(b) $\mathrm{V}_{\mathrm{m}}<22.4 \mathrm{~L}$
(c) $\mathrm{V}_{\mathrm{m}}=22.4 \mathrm{~L}$
(d) $\mathrm{V}_{\mathrm{m}}=44.8 \mathrm{~L}$

Narayan Hari
Narayan Hari
Numerade Educator
01:09

Problem 102

A closed vessel contains equal number of molecules of $\mathrm{O}_{2}$ and $\mathrm{H}_{2}$. Consider the following statements:
1. The average speed of hydrogen molecules will be greater.
2. Weight of hydrogen is $1 / 8$ th of the weight of oxygen.
3. Hydrogen molecules strike the walls more often.
4. The two gases have different average energies. The statements are wrong in:
(a) 2 and 4
(b) 2 and 3
(c) 1 and 4
(d) 1 and 3

Narayan Hari
Narayan Hari
Numerade Educator
01:20

Problem 103

The rms velocity of hydrogen is $\sqrt{7}$ times the rms velocity of nitrogen. If $\mathrm{T}$ is the temperature of the gas:
(a) $\mathrm{T}\left(\mathrm{H}_{2}\right)=\mathrm{T}\left(\mathrm{N}_{2}\right)$
(b) $\mathrm{T}\left(\mathrm{H}_{2}\right)>\mathrm{T}\left(\mathrm{N}_{2}\right)$
(c) $\mathrm{T}\left(\mathrm{H}_{2}\right)<\mathrm{T}\left(\mathrm{N}_{2}\right)$
(d) $\mathrm{T}\left(\mathrm{H}_{2}\right)=\sqrt{7 \mathrm{~T}\left(\mathrm{~N}_{2}\right)}$

Narayan Hari
Narayan Hari
Numerade Educator
00:31

Problem 104

Which of the following statement (s) is (are) correct?
(1) A plot of log KP versus $1 / \mathrm{T}$ is linear
(2) A plot of log (X) versus time is linear for a first order reaction $\mathrm{X}$ $\rightarrow \mathrm{P}$
(3) A plot of log P versus $1 / \mathrm{T}$ is linear at constant volume
(4) A plot of P versus $1 / \mathrm{V}$ is linear at constant temperature.
(a) 1,2
(b) 2,4
(c) 2,3
(d) 1,4

Mishal Gul
Mishal Gul
Numerade Educator
01:17

Problem 105

When the critical volume of gas is $0.072 \mathrm{~L} \mathrm{~mol}^{-1}$. The radius of the molecule will be, in $\mathrm{cm}$ :
(a) $\left(4 \pi / 3 \times 10^{-20}\right)^{1 / 3}$
(b) $\left(3 / 4 \pi \times 10^{-23}\right)^{1 / 3}$
(c) $\left(3 / 4 \pi \times 10^{-17}\right)$
(d) $\left(3 \pi / 4 \times 10^{-33}\right)^{1 / 3}$

Mishal Gul
Mishal Gul
Numerade Educator
01:01

Problem 106

Equal weights of ethane and hydrogen are mixed in an empty container at $25^{\circ} \mathrm{C}$. The fraction to total pressure exerted by hydrogen is:
(a) $1: 2$
(b) $1: 1$
(c) $1: 16$
(d) $15: 16$

Narayan Hari
Narayan Hari
Numerade Educator
01:01

Problem 107

The ratio of root mean square velocity to average velocity of a gas molecule at a particular temperature is:
(a) $1: 1.086$
(b) $2: 1.086$
(c) $1.086: 1$
(d) $1.086: 2$

Narayan Hari
Narayan Hari
Numerade Educator
01:04

Problem 108

Equal weights of methane and oxygen are mixed in an empty container at $25^{\circ} \mathrm{C}$. The fraction of the total pressure exerted by oxygen is:
(a) $1 / 2$
(b) $2 / 3$
(c) $1 / 3 \times 273 / 298$
(d) $1 / 3$

Narayan Hari
Narayan Hari
Numerade Educator
01:07

Problem 109

An L.P.G. cylinder contains $15 \mathrm{~kg}$ of butane gas at $27^{\circ} \mathrm{C}$ and 10 atmospheric pressure. It was leaking and its pressure fell down to 8 atmospheric pressure after one day. The gas leaked in 5 days is:
(a) $10 \mathrm{~kg}$
(b) $3 \mathrm{~kg}$
(c) $15 \mathrm{~kg}$
(d) $12 \mathrm{~kg}$

Narayan Hari
Narayan Hari
Numerade Educator
01:19

Problem 110

The partial pressure of oxygen in a flask containin $16 \mathrm{~g} \mathrm{O}_{2}$ and $32 \mathrm{~g} \mathrm{SO}_{2}$ is:
(a) $1 / 16$ of total pressure
(b) $1 / 2$ of total pressure
(c) $2 / 3$ of total pressure
(d) None of the above

Narayan Hari
Narayan Hari
Numerade Educator
00:35

Problem 111

Match the following:
List I
1. Critical temperature
2. Boyle's temperature
3. Inversion temperature
4. Reduced temperature
List II
(1) $\mathrm{a} / \mathrm{R}_{\mathrm{b}}$
(2) $2 \mathrm{a} / \mathrm{R}_{\mathrm{b}}$
(3) $\mathrm{T} / \mathrm{T}_{\mathrm{s}}$
(4) $8 \mathrm{a} / 27 \mathrm{R}_{\mathrm{b}}$
The correct matching is $\begin{array}{llll}1 & 2 & 3 & 4\end{array}$
(a) (2)
(4) (1)
(b) (4)
(1) (2) (3)
(c) (3)
(2) (1) (4)
(d) (4)
(3) (2) (1)

Mishal Gul
Mishal Gul
Numerade Educator
00:49

Problem 112

$10 \mathrm{~mL}$ of propane are mixed with $70 \mathrm{~mL}$ of oxygen and exploded. What would be the volume of residual gases after explosion and after exposure of the residual gases to alkali? All volume measurements are made at the same temperature and pressure.
(a) $55 \mathrm{~mL}, 25 \mathrm{~mL}$
(b) $40 \mathrm{~mL}, 15 \mathrm{~mL}$
(c) $50 \mathrm{~mL}, 20 \mathrm{~mL}$
(d) $35 \mathrm{~mL}, 40 \mathrm{~mL}$

Mishal Gul
Mishal Gul
Numerade Educator
00:46

Problem 113

The most probable speeds of the molecules of gas $\mathrm{A}$ at $\mathrm{T} \mathrm{K}$ and gas $\mathrm{B}$ at $\mathrm{T}_{2} \mathrm{~K}$ are in the ratio $0.715: 1$. The same ratio for gas $\mathrm{A}$ at $\mathrm{T}_{2} \mathrm{~K}$ and gas $\mathrm{B} \mathrm{T}_{1} \mathrm{~K}$ is $0.954$. Find the ratio of molar masses $\mathrm{M}_{\mathrm{A}}: \mathrm{M}_{\mathrm{B}}$
(a) $1.965$
(b) $1.0666$
(c) $1.987$
(d) $1.466$

Mishal Gul
Mishal Gul
Numerade Educator
01:40

Problem 114

A gas cylinder has $370 \mathrm{~g}$ of oxygen at $298 \mathrm{~K}$ and 30 atm pressure. If the cylinder was heated upto $348 \mathrm{~K}$ then the valve were held open until the gas pressure was $1 \mathrm{~atm}$ and the temperature remains $348 \mathrm{~K}$. What mass of oxygen would escape in this condition?
(a) $349 \mathrm{~g}$
(b) $359 \mathrm{~g}$
(c) $329 \mathrm{~g}$
(d) $339 \mathrm{~g}$

Narayan Hari
Narayan Hari
Numerade Educator
00:33

Problem 115

A $200 \mathrm{~mL}$ flask having oxygen at $220 \mathrm{~mm}$ and a $300 \mathrm{~mL}$ flask having nitrogen at $100 \mathrm{~mm}$ are connected in such a way that $\mathrm{O}_{2}$ and $\mathrm{N}_{2}$ may combine in their volumes, if temperature is kept constant. Find the total pressure of the gaseous mixture.
(a) $158 \mathrm{~mm}$
(b) $138 \mathrm{~mm}$
(c) $148 \mathrm{~mm}$
(d) $168 \mathrm{~mm}$

Mishal Gul
Mishal Gul
Numerade Educator
00:25

Problem 116

Equal masses of methane and oxygen are mixed in an empty container at $25^{\circ} \mathrm{C}$. The fraction of the total pressure exerted by oxygen is:
(a) $1 / 3 \times 273 / 298$
(b) $1 / 3$
(c) $1 / 2$
(d) $2 / 3$

Mishal Gul
Mishal Gul
Numerade Educator
00:58

Problem 117

In a mixture of $\mathrm{CO}_{2}$ and $\mathrm{H}_{2}$, the $\mathrm{P}_{\mathrm{CO}_{2}}$ is $0.4 \mathrm{~atm}$ and $\mathrm{P}_{\text {Total }}$ is 2 atm. The percentage composition of the mixture by volume can be given as:
(a) $\mathrm{CO}_{2}=20 \%, \mathrm{H}_{2}=80 \%$
(b) $\mathrm{CO}_{2}=40 \%, \mathrm{H}_{2}=60 \%$
(c) $\mathrm{CO}_{2}=80 \%, \mathrm{H}_{2}=20 \%$
(d) $\mathrm{CO}_{2}=60 \%, \mathrm{H}_{2}=40 \%$

Mishal Gul
Mishal Gul
Numerade Educator
00:32

Problem 118

Find kinetic energy of $0.05$ mole of an ideal gas at $273 \mathrm{~K}$.
(a) $1702.2 \mathrm{~J}$
(b) $170.22 \mathrm{~J}$
(c) $17.022 \mathrm{~J}$
(d) $34.44 \mathrm{~J}$

Mishal Gul
Mishal Gul
Numerade Educator
00:40

Problem 119

Van der Waal equation for $\mathrm{CH}_{4}$ at low pressure can be given as:
(a) $\mathrm{PV}=\mathrm{RT}-\mathrm{Pb}$
(b) $\mathrm{PV}=\mathrm{RT}+\frac{\mathrm{a}}{\mathrm{V}}$
(c) $\mathrm{PV}=\mathrm{RT}-\frac{\mathrm{a}}{\mathrm{V}}$
(d) $\mathrm{PV}=\mathrm{RT}+\mathrm{Pb}$

Mishal Gul
Mishal Gul
Numerade Educator
00:29

Problem 120

An open vessel having air is heated from $27^{\circ} \mathrm{C}$ to $127^{\circ} \mathrm{C}$. The fraction of air which goes out with respect to originally present is:
(a) $2 / 3$
(b) $1 / 3$
(c) $3 / 4$
(d) $1 / 4$

Mishal Gul
Mishal Gul
Numerade Educator