Rigid Body: Dynamics, Translational and Rotational Motion

Collegedunia Team logo

Collegedunia Team

Content Curator

Rigid bodies are idealized depictions of bodies that don't change shape or deform. It is defined as a collection of a large number of particles, in which the distance between any two constituent particles remains fixed under the application of external force. Statics of Rigid bodies and dynamics of the rigid body were developed to answer a variety of problems that could not be explained using classical physics.

  • Statics of Rigid bodies refers to the study of systems of interconnected bodies under no external forces i.e. objects that are either at rest or in constant motion.
  • Dynamics of Rigid bodies refers to the study of the movement of systems of interconnected bodies under the action of external forces.

Key Terms: Velocity, Acceleration, Equation of motions, Rigid bodies, Force, Motion, Mass, Translational motion, Rotational motion, Momentum, Angular velocity


What is a Rigid Body?

[Click Here for Sample Questions]

A rigid body is one whose shape is precisely defined and unchangeable. It can be defined as a body where the distance between two given points on the body does not change when an external force is applied.

  • A rigid body is usually considered as a continuous distribution of mass.
  • Under the action of external force, there is zero or very small deformation on a rigid body.
  • In simpler language, a rigid body is one that does not modify its shape when subjected to external forces.
  • A perfectly rigid body does not exist in nature.
  • According to the theory of special relativity, an object can only be supposed to be rigid if it is not moving near the speed of light.
  • According to quantum mechanics, a rigid body is a collection of point masses. For example, molecules consisting of the point masses like electrons and nuclei are often seen as rigid bodies.

Read Also: Unit of Velocity


Rigid Body Dynamics

[Click Here for Sample Questions]

Dynamics of Rigid bodies refers to the study of the movement of systems of interconnected bodies under the action of external forces. By assuming the bodies are rigid, the configuration of the system can be described by the translation and rotation of reference frames attached to the bodies.

A rigid body can undergo three forms of motion:

  • Translational Motion 
  • Rotational Motion
  • Combination of Translational and Rotational Motion

A rigid body's motion is either pure translation or a combination of translation and rotation if it is not pivoted or anchored in some way. Rotation is the motion of a rigid body that is pivoted or fixed in some way.


Translational Motion of a Rigid Body

[Click Here for Sample Questions]

If any line drawn on the rigid body remains parallel to itself throughout the motion, then the body is said to be in pure translational motion. In pure translational motion, all of the body's particles have the same velocity at any one time.

We treat the entire system as a single point-like particle with mass m at the center of mass, travelling at the center of mass's velocity Vcm. At the center of mass, the external force acting on the system acts

\({\overrightarrow F_{ext}} = \frac{d\overrightarrow{P}_{sys}}{dt} = \frac{d}{dt}(m_T \overrightarrow{V}_{cm})\)

Where,

  • Fext = External Force
  • dP/dt = Change in momentum 
  • m = mass of the particle
  • Vcm = velocity of the center of mass

Rotational Motion of a Rigid Body

[Click Here for Sample Questions]

When a rigid body rotates around a fixed axis, each of its particles moves in a circle that exists in a plane perpendicular to the axis and has its center on the axis. If any line drawn on the rigid body does not remain parallel to itself throughout its motion, then the body is said to be in rotational motion.

To describe the rotational motion of the body, we will need certain parameters:

  • The angle of rotation(θ): It is a measure of the amount of rotation of the body. When the body rotates, the angle by which any line drawn on the body rotates is the angle of rotation.
  • Angular velocity(ω): The rate of rotation is measured by angular velocity. The angular velocity is defined as:

\(\omega = {d\theta\over dt}\)

  • Angular acceleration(α): The angular acceleration is defined as the rate of change of angular velocity and it is given by

\(\alpha = {d\omega\over dt}\)

Equations of Rotational Motion for constant angular acceleration are given by:

  1. ω = ω0 + αt
  2. θ = ω0t + 1/2 αt2
  3. ω2 = ω02 + 2αθ

Read More: Angular Acceleration


Translational and Rotational Equations of Motion of a Rigid Body

Rolling motion is defined as a rigid body's combination of rotational and translational motion.

Kinetic Energy: We can get the total kinetic energy of a body by simply adding its rotational and translational kinetic energy. Thus the total kinetic energy of a particle is given by:

K = \(\frac{1}{2}\)Mvcm2 + \(\frac{1}{2}\)2

Where,

  • K= Kinetic Energy of the object
  • M= mass of the object
  • V= velocity of the object
  • I = Moment of Inertia
  • ω = Angular velocity

Things to Remember

  • A rigid Body is a body whose shape doesn't change when an external force is applied to it. 
  • A rigid body can undergo three forms of motion: translational motion, rotational motion, and a combination of translational and rotational motion.
  • In pure translational motion, all of the body's particles have the same velocity at any one time.
  • When a rigid body rotates around a fixed axis, each of its particles moves in a circle that exists in a plane perpendicular to the axis and has its center on the axis is called the rotational motion of a rigid body.
  • Rolling motion is defined as a rigid body's combination of rotational and translational motion.

Sample Questions

Ques. In the HCl molecule, the separation between the nuclei of the two atoms is about 1.27 A (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. (4 Marks)

Ans. 

Let C.M. be at a distance x A from H-atom

Distance of C.M. from Cl atom = (1.27 -x) Å

Let the mass of H-atom = m units

The mass of the Cl-atom = 35.5 m units

If C.M. is taken at the origin, then

mx + (1.27 – x) 35.5 m

= 0 mx = – (1.27 – x) 35.5 m

A negative sign indicates that if Cl atom is on the right side of C.M. (+), the hydrogen atom is on 

the left side of C.M. So, avoiding, if we get

x + 35.5x = 1.27 x 35.5

36.5x = 45.085

Therefore, the center of mass is located on the line joining H and Cl nuclei at a distance of 1.24 A from the H atom.

Ques. A rope of negligible mass is wound around 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. (3 Marks)

Ans. Mass of hollow cylinder, M = 3 kg

Radius of hollow cylinder, R = 40 cm = 0.4 m

M.I. of the hollow cylinder about its axis

I = MR2 = 3 kg x (0.4 m)2 = 0.48 kg m2

Force F = 30 N

.’. Torque, τ=FxR = 30N x 0.4 m = 12 Nm

Ques. What are the essential features of angular momentum? (3 Marks)

Ans. The following are the key characteristics of angular momentum:

  1. The strength of a particle's rotational tendency around a point is determined by its angular momentum with respect to that point.
  2. The magnitude of angular momentum is determined by the particle's mass, velocity, and distance from the reference point, i.e. L = m v r.
  3. The rotational momentum vector notation is useful. Its axial direction is determined by the right-hand rule. L points in the direction perpendicular to the plane containing r and v.

Ques. What is the physical significance of M.I.? (2 Marks)

Ans. Rotational inertia, or M.I. of the body, is the incapacity of a body to change its condition of uniform rotation around an axis. It functions in rotatory motion in the same way as mass functions in translational motion, i.e. it is a rotating equivalent of mass.

Ques. A solid disc and a ring, both of radius 10 cm are placed on a horizontal table simultaneously, with an initial angular speed equal to 10π rad s-1.  Which of the two will start to roll earlier? The coefficient of kinetic friction is \(\mu k\) = 0.2. (5 Marks)

Ans. Given, Radii of the solid disc and the ring R = 10 cm = 0.1 m 

Initial angular speed \(\omega_0 = 10 \pi\) rad s−1 

Let, m be the mass of the disc/ring, and \(\omega\) be the final angular velocity after perfect rolling starts.

Also, the moment of inertia I = mk2

where k is the radius of gyration.

As the net torque about the point ???? is zero, angular momentum is conserved about this point.

 For ring,

Hence the disc begins to roll early than the ring.

Ques. Define Torque. What is its physical significance? (4 Marks)

Ans. Torque is defined as the turning effect that a force has on a rigid body.

i.e τ = Fd

where F = force applied on a body.

d is the ⊥ar distance of the line of action of the force from the axis of rotation.

Mathematically in vector form, τ may be expressed as

τ = r × F

i.e. it is the cross product of the position vector r and Force F

Ques. The speed of the inner layers of the whirlwind in a tornado is alarmingly high. Explain why? (2 Marks)

Ans. In a tornado, the inner layers of the whirlwind are close to the axis of rotation. It indicates that the M.I. of the air molecules in the inner layers is low. 

As a result of the rule of conservation of angular momentum, the co of the inner layers of a tornado's whirlwind is extremely high.

Do Check Out:

CBSE CLASS XII Related Questions

  • 1.
    A student sets up the circuit as shown in the figure to find the value of unknown resistance X and records a set of readings of the voltmeter and the ammeter by using the rheostat.


      • 2.
        Read the following paragraph and answer the questions that follow.
        In an experiment with convex lens of focal length f, the screen is fixed at a distance D from the object. A student slowly moves the lens away from the object towards the screen and finds that she is able to form sharp image of the object for two positions of the lens. The distance between these two positions of the lens is d.


          • 3.
            Capacitors are manufactured with certain standard capacitances and working voltages. However, these standard values may not be the ones that are actually needed in a particular application. Two or more capacitors can be grouped in series or in parallel to achieve desired capacitance and voltage. When connected in series, the total capacitance decreases while the voltage rating increases, whereas in parallel connections, the total capacitance increases and maintains the same voltage rating. A capacitor stores energy in the electric field between its plates and stored energy is proportional to the square of the voltage and capacitance $U = \frac{1}{2}CV^2$, where symbols have their usual meanings.
            Two capacitors, one of $3 \ \mu$F and the other of $6 \ \mu$F, are connected in series in the circuit as shown in the figure, for a long time. }


              • 4.
                Two copper wires having their radii in the ratio of 3 : 2 are connected in series across a battery. Find the ratio of the drift velocities of the electrons in the wires.


                  • 5.
                    A charged particle $+q$ in an electric field $\vec{E}$ experiences a force in the direction of the electric field. As a result, its kinetic energy changes. Similarly, the charged particle also experiences a force when it moves in a magnetic field $\vec{B}$. But this magnetic force is perpendicular to both velocity $\vec{v}$ of the charged particle and the magnetic field $\vec{B}$, so it cannot change the kinetic energy of the charged particle. Consider two charged particles 1 and 2 of masses $m$ and $\frac{m}{2}$ having charges $-q$ and $+2q$ respectively. They are accelerated from rest through the same potential difference $V$ and acquire kinetic energy $K_1$ and $K_2$. Then they enter in a region of uniform magnetic field $\vec{B}$ perpendicular to their velocities.


                      • 6.
                        Derive an expression for the capacitance of a parallel plate capacitor of plate area A and plate separation d with air present between the plates.

                          CBSE CLASS XII Previous Year Papers

                          Comments


                          No Comments To Show