NCERT Solutions Class 11 Physics Chapter 6 - System of Particles & Rotational Motion

Q6.1: Give the location of the centre of mass of a (i) sphere, (ii) cylinder, (iii) ring, and (iv) cube, each of uniform mass density. Does the centre of mass of a body necessarily lie inside the body?

Ans: In all the four cases, as the mass density is uniform, centreof mass is located at their respective geometrical centres.
No, it is not necessary that the centre of mass of a body should lie on the body. For example, in case of a circular ring, centre of mass is at the centre of the ring, where there is no mass.

Q6.2: In the HCl molecule, the separation between the nuclei of the two atoms is about 1.27 Å (1 Å = 10^–10 m). Find the approximate location of the CM of the molecule, given that a chlorine atom is about 35.5 times as massive as a hydrogen atom and nearly all the mass of an atom is concentrated in its nucleus.
Ans: 

Distance between H and Cl atoms = 1.27 Å

Mass of H atom = m
Mass of Cl atom = 35.5m
Let the centre of mass of the system lie at a distance x from the Cl atom.
Distance of the centre of mass from the H atom = (1.27 – x)
Let us assume that the centre of mass of the given molecule lies at the origin. Therefore, we can have:
[ m(1.27 – x) + 35.5mx ] / (m + 35.5m)  =  0
m(1.27 – x) + 35.5mx =  0
1.27 - x = -35.5x
∴ x = -1.27 / (35.5 - 1)  =  -0.037 Å
Here, the negative sign indicates that the centre of mass lies at the left of the molecule. Hence, the centre of mass of the HCl molecule lies 0.037Å from the Cl atom.

Q6.3: A child sits stationary at one end of a long trolley moving uniformly with a speed V on a smooth horizontal floor. If the child gets up and runs about on the trolley in any manner, what is the speed of the CM of the (trolley + child) system?

Ans: The child is running arbitrarily on a trolley moving with velocity v. However, the running of the child will produce no effect on the velocity of the centre of mass of the trolley. This is because the force due to the boy’s motion is purely internal. Internal forces produce no effect on the motion of the bodies on which they act. Since no external force is involved in the boy–trolley system, the boy’s motion will produce no change in the velocity of the centre of mass of the trolley.

Q6.4: Show that the area of the triangle contained between the vectors a and b is one half of the magnitude of a × b.
Ans: Consider two vectors OK = vector |a| and OM = vector |b|, inclined at an angle θ, as shown in the following figure.

Q6.5: Show that a. (b × c) is equal in magnitude to the volume of the parallelepiped formed on the three vectors, a, b and c.
Ans: A parallelepiped with origin O and sides a, b, and c is shown in the following figure.



Q6.6: Find the components along the x, y, z axes of the angular momentum l of a particle, whose position vector is r with components x, y, z and momentum is p with components p_x, p_y and p_z. Show that if the particle moves only in the x-yplane the angular momentum has only a z-component.
Ans: 



Q6.7: Two particles, each of mass m and speed v, travel in opposite directions along parallel lines separated by a distance d. Show that the vector angular momentum of the two particle system is the same whatever be the point about which the angular momentum is taken.
Ans: Let at a certain instant two particles be at points P and Q, as shown in the following figure.

Angular momentum of the system about point P:

L_p = mv × 0 + mv × d  =  mvd   ...(i)
Angular momentum of the system about point Q:
L_Q = mv × d + mv × 0   =  mvd   ....(ii)
Consider a point R, which is at a distance y from point Q, i.e.,
QR = y
∴ PR = d – y 
Angular momentum of the system about point R:
L_R = mv × (d - y) + mv × y
mvd - mvy + mvy
= mvd  ....(iii)
Comparing equations (i), (ii), and (iii), we get:
L_P = L_Q = L_R    ...(iv)
We infer from equation (iv) that the angular momentum of a system does not depend on the point about which it is taken.

Q6.8: A non-uniform bar of weight W is suspended at rest by two strings of negligible weight as shown in Fig.7.39. The angles made by the strings with the vertical are 36.9° and 53.1° respectively. The bar is 2 m long. Calculate the distance d of the centre of gravity of the bar from its left end.

Ans: The free body diagram of the bar is shown in the following figure.

Length of the bar, l = 2 m
T₁ and T₂ are the tensions produced in the left and right strings respectively.
At translational equilibrium, we have:
T₁ Sin 36.9⁰ = T₂ Sin 53.1⁰
T₁ / T₂ = 4 / 3
⇒ T₁ = (4/3) T₂
For rotational equilibrium, on taking the torque about the centre of gravity, we have:
T₁ (Cos 36.9) × d = T₂ Cos 53.1 (2 - d)
T₁ × 0.800 d = T₂ × 0.600 (2 - d)
(4/3) × T₂ × 0.800d = T₂ (0.600 × 2 - 0.600d)
1.067d + 0.6d = 1.2
∴ d = 1.2 / 1.67
= 0.72 m
Hence, the C.G. (centre of gravity) of the given bar lies 0.72 m from its left end.

Q6.9: A car weighs 1800 kg. The distance between its front and back axles is 1.8 m. Its centre of gravity is 1.05 m behind the front axle. Determine the force exerted by the level ground on each front wheel and each back wheel.

Ans: Mass of the car, m = 1800 kg

Distance between the front and back axles, d = 1.8 m
Distance between the C.G. (centre of gravity) and the back axle = 1.05 m
The various forces acting on the car are shown in the following figure.

R_f and R_bare the forces exerted by the level ground on the front and back wheels respectively.

At translational equilibrium:
R_f + R_b = mg
= 1800 × 9.8
= 17640 N   ....(i)
For rotational equilibrium, on taking the torque about the C.G., we have:
R_f(1.05) = R_b(1.8 - 1.05)
R_b / R_f  =  7 / 5
R_b = 1.4 R_f    ......(ii)
Solving equations (i) and (ii), we get:
1.4R_f + R_f = 17640
R_f = 7350 N
∴ R_b = 17640 – 7350 = 10290 N
Therefore, the force exerted on each front wheel = 7350 / 2  =  3675 N, and
The force exerted on each back wheel = 10290 / 2  =  5145 N

Q6.10: Torques of equal magnitude are applied to a hollow cylinder and a solid sphere, both having the same mass and radius. The cylinder is free to rotate about its standard axis of symmetry, and the sphere is free to rotate about an axis passing through its centre. Which of the two will acquire a greater angular speed after a given time?
Ans: Let m and r be the respective masses of the hollow cylinder and the solid sphere.
 The moment of inertia of the hollow cylinder about its standard axis, I₁ = mr²
The moment of inertia of the solid sphere about an axis passing through its centre, I₂ = (2/5)mr²
We have the relation:
τ = Iα
Where,
α = Angular acceleration
τ = Torque
I = Moment of inertia
For the hollow cylinder, τ₁ = I₁α₁
For the solid sphere, τ_n = I_nα_n
As an equal torque is applied to both the bodies, τ₁ = τ₂
∴ α₂ / α₁  =  I₁  /  I₂  =  mr²  /  (2/5)mr²
α₂ > α₁     ...(i)
Now, using the relation:
ω = ω₀ + αt
Where,
ω₀ = Initial angular velocity
t = Time of rotation
ω = Final angular velocity
For equal ω₀ and t, we have:
ω ∝ α … (ii)
From equations (i) and (ii), we can write:
ω₂ > ω₁
Hence, the angular velocity of the solid sphere will be greater than that of the hollow cylinder.

Q6.11:  A solid cylinder of mass 20 kg rotates about its axis with angular speed 100 rad s^–1. The radius of the cylinder is 0.25 m. What is the kinetic energy associated with the rotation of the cylinder? What is the magnitude of angular momentum of the cylinder about its axis?
Ans:

Angular speed, ω = 100 rad s^–1
Radius of the cylinder, r = 0.25 m
The moment of inertia of the solid cylinder:
I = mr² / 2
= (1/2) × 20 × (0.25)²
= 0.625 kg m²
∴ Kinetic energy = (1/2) I ω²
= (1/2) × 6.25 × (100)² = 3125 J
∴Angular momentum, L = Iω
= 6.25 × 100
= 62.5 Js

Q6.12: (a) A child stands at the centre of a turntable with his two arms outstretched. The turntable is set rotating with an angular speed of 40 rev/min. How much is the angular speed of the child if he folds his hands back and thereby reduces his moment of inertia to 2/5 times the initial value? Assume that the turntable rotates without friction.
(b) Show that the child’s new kinetic energy of rotation is more than the initial kinetic energy of rotation. How do you account for this increase in kinetic energy?
Ans: (a) 100 rev/min
Initial angular velocity, ω₁= 40 rev/min
Final angular velocity = ω₂
The moment of inertia of the boy with stretched hands = I₁
The moment of inertia of the boy with folded hands = I₂
The two moments of inertia are related as:
I₂ = (2/5) I₁
Since no external force acts on the boy, the angular momentum L is a constant.
Hence, for the two situations, we can write:
I₂ω₂  =  I₁ ω₁
ω₂ = (I₁/I₂) ω₁
= [ I₁ / (2/5)I₁ ] × 40  =  (5/2) × 40  =  100 rev/min
(b) Final K.E. = 2.5 Initial K.E.
Final kinetic rotation, E_F = (1/2) I₂ ω₂²
Initial kinetic rotation, E_I =  (1/2) I₁ ω₁² 
E_F / E_I = (1/2) I₂ ω₂² / (1/2) I₁ ω₁²
= (2/5) I₁ (100)² / I₁ (40)²
= 2.5
∴ E_F = 2.5 E₁
The increase in the rotational kinetic energy is attributed to the internal energy of the boy.

Q6.13: A rope of negligible mass is wound round a hollow cylinder of mass 3 kg and radius 40 cm. What is the angular acceleration of the cylinder if the rope is pulled with a force of 30 N? What is the linear acceleration of the rope? Assume that there is no slipping.
Ans: Mass of the hollow cylinder, m = 3 kg
Radius of the hollow cylinder, r = 40 cm = 0.4 m
Applied force, F = 30 N
The moment of inertia of the hollow cylinder about its geometric axis:
I = mr²
= 3 × (0.4)² = 0.48 kg m²
Torque, τ = F × r  =  30 × 0.4  = 12 Nm
For angular acceleration α, torque is also given by the relation:
τ = Iα
α = τ / I  =  12 / 0.48  = 25 rad s^-2
Linear acceleration = τα = 0.4 × 25 = 10 m s^–2 

Q6.14: To maintain a rotor at a uniform angular speed of 200 rad s^–1, an engine needs to transmit a torque of 180 Nm. What is the power required by the engine?
(Note: uniform angular velocity in the absence of friction implies zero torque. In practice, applied torque is needed to counter frictional torque). Assume that the engine is 100 % efficient. 
Ans: Angular speed of the rotor, ω = 200 rad/s
Torque required, τ = 180 Nm
The power of the rotor (P) is related to torque and angular speed by the relation:
P = τω
= 180 × 200 = 36 × 10³
= 36 kW
Hence, the power required by the engine is 36 kW.

Q6.15: From a uniform disk of radius R, a circular hole of radius R/2 is cut out. The centre of the hole is at R/2 from the centre of the original disc. Locate the centre of gravity of the resulting flat body.
Ans: R/6; from the original centre of the body and opposite to the centre of the cut portion.
Mass per unit area of the original disc = σ
Radius of the original disc = R
Mass of the original disc, M = πR²σ
The disc with the cut portion is shown in the following figure:

M (concentrated at O), and –M′ (=M/4) concentrated at O′ 
(The negative sign indicates that this portion has been removed from the original disc.)
Let x be the distance through which the centre of mass of the remaining portion shifts from point O.
The relation between the centres of masses of two masses is given as:
x = (m₁ r₁ + m₂ r₂) /  (m₁ + m₂)
For the given system, we can write:
x = [ M × 0 - M' × (R/2) ] /  ( M + (-M') )  =  -R / 6
(The negative sign indicates that the centre of mass gets shifted toward the left of point O.) 

Q6.16: A metre stick is balanced on a knife edge at its centre. When two coins, each of mass 5 g are put one on top of the other at the 12.0 cm mark, the stick is found to be balanced at 45.0 cm. What is the mass of the metre stick?
Ans: Let W and W′ be the respective weights of the metre stick and the coin.

Mass of the meter stick = m^’
Mass of each coin, m = 5 g
When the coins are placed 12 cm away from the end P, the centre of mass gets shifted by 5 cm from point R toward the end P. The centre of mass is located at a distance of 45 cm from point P.
The net torque will be conserved for rotational equilibrium about point R.
10 × g(45 - 12) - m'g(50 - 45) = 0
∴ m' = 66 g
Hence, the mass of the metre stick is 66 g. 

Q6.17: The oxygen molecule has a mass of 5.30 × 10^–26 kg and a moment of inertia of 1.94×10^–46kg m² about an axis through its centre perpendicular to the lines joining the two atoms. Suppose the mean speed of such a molecule in a gas is 500 m/s and that its kinetic energy of rotation is two thirds of its kinetic energy of translation. Find the average angular velocity of the molecule.
Ans: Mass of an oxygen molecule, m = 5.30 × 10^–26 kg
Moment of inertia, I = 1.94 × 10^–46 kg m²
Velocity of the oxygen molecule, v = 500 m/s
The separation between the two atoms of the oxygen molecule = 2r 
Mass of each oxygen atom = m/2
Hence, moment of inertia I, is calculated as:
(m/2)r² + (m/2)r² = mr²
r = ( I / m)^1/2
(1.94 × 10^-46 / 5.36 × 10^-26 )^1/2  =  0.60 × 10^-10 m
It is given that:
KE_rot = (2/3)KE_trans
(1/2) I ω² = (2/3) × (1/2) × mv²
mr²ω² = (2/3)mv²
ω = (2/3)^1/2 (v/r)
= (2/3)^1/2 (500 / 0.6 × 10^-10) = 6.80 × 10¹² rad/s.

Old NCERT Solutions

R₂ is the normal reaction to the sphere.
θ₂ > θ₁; sin θ₂ > sin θ₁ ... (i)
∴ a₂ > a_{1 …} (ii)
Initial velocity, u = 0
Final velocity, v = Constant
Using the first equation of motion, we can obtain the time of roll as:
v = u + at
∴ t ∝ (1/α)
For inclination θ₁ : t₁ ∝ (1/α₁)
For inclination θ₂ : t₂ ∝ (1/α₂)
From above equations, we get:
t₂ < t₁
Hence, the sphere will take a longer time to reach the bottom of the inclined plane having the smaller inclination. 

Q2: A hoop of radius 2 m weighs 100 kg. It rolls along a horizontal floor so that its centre of mass has a speed of 20 cm/s. How much work has to be done to stop it?
Ans: Radius of the hoop, r = 2 m
Mass of the hoop, m = 100 kg
Velocity of the hoop, v = 20 cm/s = 0.2 m/s
Total energy of the hoop = Translational K.E. + Rotational K.E.
E_T = (1/2)mv² + (1/2) I ω²
Moment of inertia of the hoop about its centre, I = mr²
E_T = (1/2)mv² + (1/2) (mr²)ω²
But we have the relation, v = rω
∴ E_T = (1/2)mv² + (1/2)mr²ω²
= (1/2)mv² + (1/2)mv² = mv²
The work required to be done for stopping the hoop is equal to the total energy of the hoop.
∴ Required work to be done, W = mv² = 100 × (0.2)² = 4 J.

Q3: A solid cylinder rolls up an inclined plane of angle of inclination 30°. At the bottom of the inclined plane the centre of mass of the cylinder has a speed of 5 m/s.
(a) How far will the cylinder go up the plane?
(b) How long will it take to return to the bottom?
Ans: Initial velocity of the solid cylinder, v = 5 m/s
Angle of inclination, θ = 30°
Let the cylinder go up the plane upto a height h.
From, 1/2 mv2 + 1/2 I ω2 = mgh
1/2mv2 + 1/2 (1/2 mr2) ω2 = mgh
3/4 mv2 = mgh
h = 3v2/4g = 3 × 52/4 × 9.8 = 1.913 m
If s is the distance up the inclined plane, then as
sin θ = h/s
s = h/sin θ  = 1.913/sin 30° = 3.826 m
Time taken to return to the bottom
Additional Excercises

(Hint: Consider the equilibrium of each side of the ladder separately.)

Moment of inertia when the man stretches his hands to a distance of 90 cm:
2 × m r²
= 2 × 5 × (0.9)²
= 8.1 kg m²
Initial moment of inertia of the system, I_i = 7.6 + 8.1 = 15.7 kg m²
Angular speed, ω_i = 300 rev/min
Angular momentum, L_i = I_iω_i  =  15.7 × 30   ....(i)
Moment of inertia when the man folds his hands to a distance of 20 cm:
2 × mr²
= 2 × 5 (0.2)² = 0.4 kg m²
Final moment of inertia, I_f = 7.6 + 0.4 = 8 kg m² 
Final angular speed = ω_f
Final angular momentum, L_f = I_fω_f = 0.79 ω_f ...... (ii)
From the conservation of angular momentum, we have:
I_iω_i  =  I_fω_f
∴ ω_f = 15.7 × 30  / 8  =  58.88 rev/min
(b) Kinetic energy is not conserved in the given process. In fact, with the decrease in the moment of inertia, kinetic energy increases. The additional kinetic energy comes from the work done by the man to fold his hands toward himself.

Q6: A bullet of mass 10 g and speed 500 m/s is fired into a door and gets embedded exactly at the centre of the door. The door is 1.0 m wide and weighs 12 kg. It is hinged at one end and rotates about a vertical axis practically without friction. Find the angular speed of the door just after the bullet embeds into it.
(Hint: The moment of inertia of the door about the vertical axis at one end is ML²/3.)
Ans: Mass of the bullet, m = 10 g = 10 × 10^–3 kg
Velocity of the bullet, v = 500 m/s
Thickness of the door, L = 1 m
Radius of the door, r = m / 2
Mass of the door, M = 12 kg
Angular momentum imparted by the bullet on the door:
α = mvr
= (10 × 10^-3 ) × (500) × (1/2)  =  2.5 kg m² s^-1    ...(i)
Moment of inertia of the door:
I = ML² / 3
= (1/3) × 12 × 1² = 4 kgm²
But α = Iω
∴ ω = α / I
= 2.5 / 4
= 0.625 rad s^-1

Q7: Two discs of moments of inertia I₁ and I₂ about their respective axes (normal to the disc and passing through the centre), and rotating with angular speeds ω₁ and ω₂ are brought into contact face to face with their axes of rotation coincident. (a) What is the angular speed of the two-disc system? (b) Show that the kinetic energy of the combined system is less than the sum of the initial kinetic energies of the two discs. How do you account for this loss in energy? Take ω₁ ≠ ω₂.
Ans: (a) Moment of inertia of disc I = I₁
Angular speed of disc I = ω₁
Moment of inertia of disc I = I₂
Angular speed of disc I = ω₂
Angular momentum of disc I, L₁ = I₁ω₁
Angular momentum of disc II, L₂ = I₂ω₂
Total initial angular momentum L_i = I₁ω₁ + I₂ω₂
When the two discs are joined together, their moments of inertia get added up.
Moment of inertia of the system of two discs, I = I₁ + I₂
Let ω be the angular speed of the system.
Total final angular momentum, L_T = (I₁ + I₂) ω
Using the law of conservation of angular momentum, we have:
L_i = L_T
I₁ω₁ + I₂ω₂ = (I₁ + I₂)ω
∴ ω = (I₁ω₁ + I₂ω₂) / (I₁ + I₂)
(b) Kinetic energy of disc I, E₁ = (1/2) I₁ω₁²
Kinetic energy of disc II, E₁ = (1/2) I₂ω₂²
Total initial kinetic energy, E_i = (1/2) ( I₁ω₁² + I₂ω₂²)
When the discs are joined, their moments of inertia get added up.
Moment of inertia of the system, I = I₁ + I₂
Angular speed of the system = ω
Final kinetic energy E_f:  =  (1/2) ( I₁ + I₂) ω²
=  (1/2) ( I₁ + I₂) [ (I₁ω₁ + I₂ω₂) / (I₁ + I₂) ]²
= (1/2) (I₁ω₁ + I₂ω₂)² / (I₁ + I₂)
∴ E_i - E_f 
= (1/2) ( I₁ω₁² + I₂ω₂²) - (1/2) (I₁ω₁ + I₂ω₂)² / (I₁ + I₂)
Solving the equation, we get
= I₁ I₂ (ω₁ - ω₂)² / 2(I₁ + I₂)
All the quantities on RHS are positive
∴ E_i - E_f > 0
E_i > E_f
The loss of KE can be attributed to the frictional force that comes into play when the two discs come in contact with each other.

Q8: (a) Prove the theorem of perpendicular axes.
(Hint: Square of the distance of a point (x, y) in the x–y plane from an axis through the origin perpendicular to the plane is x² + y²).
(b) Prove the theorem of parallel axes.
(Hint: If the centre of mass is chosen to be the origin ∑ m_ir_i = 0).
Ans: (a) The theorem of perpendicular axes states that the moment of inertia of a planar body (lamina) about an axis perpendicular to its plane is equal to the sum of its moments of inertia about two perpendicular axes concurrent with perpendicular axis and lying in the plane of the body.
A physical body with centre O and a point mass m,in the x–y plane at (x, y) is shown in the following figure.

= m(x² + y²)
= m [(x² + y²)^1/2]^1/2
I_x + I_y = I_z
Hence, the theorem is proved.
(b) The theorem of parallel axes states that the moment of inertia of a body about any axis is equal to the sum of the moment of inertia of the body about a parallel axis passing through its centre of mass and the product of its mass and the square of the distance between the two parallel axes.

Suppose a rigid body is made up of n particles, having masses m₁, m₂, m₃, … , m_n, at perpendicular distances r₁, r₂, r₃, … , r_n respectively from the centre of mass O of the rigid body.
The moment of inertia about axis RS passing through the point O:

R = Radius of the body
K = Radius of gyration of the body
v = Translational velocity of the body
h =Height of the inclined plane
g = Acceleration due to gravity
Total energy at the top of the plane, E­₁= mgh
Total energy at the bottom of the plane, E_b = KE_rot + KE_trans
= (1/2) I ω² + (1/2) mv²
But I = mk² and ω = v / R
∴ E_b = (1/2)(mk²)(v²/R²) + (1/2)mv²
= (1/2)mv² (1 + k² / R²)
From the law of conservation of energy, we have:
E_T = E_b
mgh = (1/2)mv² (1 + k² / R²)
∴ v = 2gh / (1 + k² / R²)
Hence, the given result is proved. 

Q10: A disc rotating about its axis with angular speed ω_o is placed lightly (without any translational push) on a perfectly frictionless table. The radius of the disc is R. What are the linear velocities of the points A, B and C on the disc shown in Fig. 7.41? Will the disc roll in the direction indicated?

The disc will not roll
Angular speed of the disc = ω_o 
Radius of the disc = R
Using the relation for linear velocity, v = ω_oR
For point A:
v_A = Rω_o; in the direction tangential to the right
For point B:
v_B = Rω_o; in the direction tangential to the left
For point C:
v_c = (R/2)ω_o in the direction same as that of v_A
The directions of motion of points A, B, and C on the disc are shown in the following figure 

Since the disc is placed on a frictionless table, it will not roll. This is because the presence of friction is essential for the rolling of a body.

Q11: Explain why friction is necessary to make the disc in Fig. 7.41 roll in the direction indicated.
(a) Give the direction of frictional force at B, and the sense of frictional torque, before perfect rolling begins.
(b) What is the force of friction after perfect rolling begins?

Initial angular speed, ω₀ =10 π rad s^–1
Coefficient of kinetic friction, μ_k = 0.2
Initial velocity of both the objects, u = 0
Motion of the two objects is caused by frictional force. As per Newton’s second law of motion, we have frictional force, f = ma 
μ_kmg= ma
Where,
a = Acceleration produced in the objects
m = Mass 
∴ a = μ_kg … (i)
As per the first equation of motion, the final velocity of the objects can be obtained as:
v = u + at
= 0 + μ_kgt
= μ_kgt … (ii)
The torque applied by the frictional force will act in perpendicularly outward direction and cause reduction in the initial angular speed.
Torque, τ= –Iα
α = Angular acceleration
μ_kmgr = –Iα 
∴ α = -μ_kmgr / I     .....(iii)
Using the first equation of rotational motion to obtain the final angular speed:
ω = ω₀ + αt
= ω₀ + (-μ_kmgr / I)t    ....(iv)
Rolling starts when linear velocity, v = rω
∴ v = r (ω₀ - μ_kmgrt / I)    ...(v)
Equating equations (ii) and (v), we get:
μ_kgt = r (ω₀ - μ_kmgrt / I)
= rω₀ - μ_kmgr²t / I    ....(vi)
For the ring: 
I = mr²
∴ μ_kgt = rω₀ - μ_kmgr²t / mr²
= rω₀ - μ_kgt
2μ_kgt = rω₀
∴ t = rω₀ / 2μ_kg
= 0.1 × 10 × 3.14 / 2 × 0.2 × 9.8  =  0.80 s    ....(vii)
For the disc: I = (1/2)mr²
∴ μ_kgt = rω₀ - μ_kmgr²t / (1/2)mr²
= rω₀ - 2μ_kgt
3μ_kgt = rω₀
∴ t = rω₀ / 3μ_kg
= 0.1 × 10 × 3.14 / 3 × 0.2 × 9.8  =  0.53 s   .....(viii)
Since t_d > t_r, the disc will start rolling before the ring.

Q13: A cylinder of mass 10 kg and radius 15 cm is rolling perfectly on a plane of inclination 30°. The coefficient of static friction µ_s = 0.25.
(a) How much is the force of friction acting on the cylinder?
(b) What is the work done against friction during rolling?
(c) If the inclination θ of the plane is increased, at what value of θ does the cylinder begin to skid, and not roll perfectly?
Ans: Mass of the cylinder, m = 10 kg
Radius of the cylinder, r = 15 cm = 0.15 m
Co-efficient of kinetic friction, µ_k = 0.25
Angle of inclination, θ = 30°
Moment of inertia of a solid cylinder about its geometric axis, I = (1/2)mr²
The various forces acting on the cylinder are shown in the following figure:

mg Sin 30° - f = ma
f = mg Sin 30° - ma
= 10 × 9.8 × 0.5 - 10 × 3.27
49 - 32.7 = 16.3 N
(b) During rolling, the instantaneous point of contact with the plane comes to rest. Hence, the work done against frictional force is zero.
(c) For rolling without skid, we have the relation:
μ = (1/3) tan θ
tan θ = 3μ = 3 × 0.25
∴ θ = tan^-1 (0.75) = 36.87°.

Q14: Read each statement below carefully, and state, with reasons, if it is true or false;
(a) During rolling, the force of friction acts in the same direction as the direction of motion of the CM of the body.
(b) The instantaneous speed of the point of contact during rolling is zero.
(c) The instantaneous acceleration of the point of contact during rolling is zero.
(d) For perfect rolling motion, work done against friction is zero.
(e) A wheel moving down a perfectly frictionless inclined plane will undergo slipping (not rolling) motion.
Ans: (a) False
Frictional force acts opposite to the direction of motion of the centre of mass of a body. In the case of rolling, the direction of motion of the centre of mass is backward. Hence, frictional force acts in the forward direction.
(b) True
Rolling can be considered as the rotation of a body about an axis passing through the point of contact of the body with the ground. Hence, its instantaneous speed is zero.
(c) False
This is becausehen a body is rolling, its instantaneous acceleration is not equal to zero. It has some value.
(d) True
This is because once the perfect rolling begins, force of friction becomes zero. Hence work done against friction is zero.
(e) True
This is because rolling occurs only on account of friction which is a tangential force capable of providing torque. When the inclined plane is perfectly smooth, the wheel will simply slip under the effect of its own weight.

Q15: (a) Find the moment of inertia of a sphere about a tangent to the sphere, given the moment of inertia of the sphere about any of its diameters to be 2MR²/5, where M is the mass of the sphere and R is the radius of the sphere.
(b) Given the moment of inertia of a disc of mass M and radius R about any of its diameters to be MR²/4, find its moment of inertia about an axis normal to the disc and passing through a point on its edge.
Ans: (a) The moment of inertia (M.I.) of a sphere about its diameter = 2MR²/5

The M.I. about a tangent of the sphere = 2MR²/5 + MR²  =  7MR² / 5
(b) The moment of inertia of a disc about its diameter = MR² / 4
According to the theorem of perpendicular axis, the moment of inertia of a planar body (lamina) about an axis perpendicular to its plane is equal to the sum of its moments of inertia about two perpendicular axes concurrent with perpendicular axis and lying in the plane of the body.
The M.I. of the disc about its centre = MR² / 4 + MR² / 4  =  MR² / 2
The situation is shown in the given figure.