How To Solve HC Verma Solutions Class 11 Chapter 7 Circular Motion

Introduction to HC Verma Solutions Class 11 Chapter 7 Circular Motion

Chapter 7, Circular Motion, manages roundabout movement. The equation V = 2πr/t decides an item’s speed in a straight movement. Essentially, roundabout movement becomes an integral factor on account of around way.

  • Round movement can be characterized as the rotational development of an item along a roundabout way.
  • The rakish pace of pivot and speed stay steady during uniform roundabout movement. In any case, during non-uniform roundabout movement, the pace of turn doesn’t stay steady.
  • A few normal instances of roundabout movement incorporate man-caused satellites which spin around planet Earth, pivoting roof fans, moving wheels of vehicles, windmill cutting edges and gas turbine gears.
  • A significant part of the round movement is that the course of movement changes consistently. Subsequently, roundabout movement should be portrayed as far as precise factors. Precise relocation is characterized as the point turned by a pivoting molecule for each unit of time. It is addressed by ∆θ and is estimated in radians.

HC Verma Solutions Class 11 Chapter 7 Circular Motion

Circular motion is an essential concept in physics, especially in the study of mechanics. In Class 11, Chapter 7 of HC Verma's Concepts of Physics, students are introduced to the fundamental principles governing objects moving in a circular path. This chapter covers the various aspects of circular motion, including centripetal force, angular velocity, and acceleration. Solving HC Verma's questions from this chapter requires a clear understanding of the concepts and a step-by-step approach to applying them. In this guide, we will walk through the solutions to Chapter 7, providing tips and methods to master the topic and solve problems efficiently, helping students build a strong foundation for future learning in physics.

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Question

Track down the speed increase of the moon concerning the earth from the accompanying information: Distance between the earth and the moon = 3.85 × 105 km and the time is taken by the moon to finish one
transformation around the earth = 27.3 days.

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Answer
Speed of the moon=distance/time

=2πr/T

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= 1025.4 m/s

Moon’s Acceleration = Ar = 2.73 × 10-3 m/s2

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Question 
Observe the speed increase of a molecule put on the outer layer of the earth at the equator because of earth’s pivot. The distance across of earth = 12800 km and it requires 24 hours for the earth to finish one
transformation about its pivot.
Answer 
Speed of molecule at equator=distance/time

= 2πR/T

= 465.1 m/s2

Particle’s acceleration = 0.038 m/s2

Question 
A molecule moves surrounded by a range of 1.0 cm at a speed given by v = 2.0 t where v is in cm/s and t in
seconds. (a) Find the spiral speed increase of the molecule at t = 1 s. (b) Find the extraneous speed increase at t = 1 s. (c) Find the extent of the speed increase at t = 1 s.

Answer
(a)
Speed of molecule at t=1 sec
V=2t
V=2(1)
V=2cm/s
Outspread speed increase = 4 cm/s2

(b)
Digressive speed increase = 2cm/s2

(c) An = √Ar2 + At2 = √20 cm/s

Question 
A bike weighing 150 kg along with its rider moving at 36 km/hr is to take a turn of sweep 30 m.
What flat power on the bike is expected to make the turn conceivable?

Answer
Level power required=Centrifugal

= mv2 /R = 500N

Question 
Assuming the flat power required for the turn in the past issue is to be provided by the typical power
by the street, what should be the legitimate point of banking?

Answer

Let θ be the banking angle

tanθ = v2 /Rg

θ = tan-1(1/3)

Question 
A recreation area has a span of 10 m. On the off chance that a vehicle goes round it at a normal speed of 18 km/hr, what ought to be the appropriate point of banking

Answer

Let θ be the banking angle

tanθ = v2 /Rg

θ = tan-1(1/4)

Question
Assuming the street of the past issue is level (no banking), what should be the base erosion
coefficient with the goal that a bike going at 18 km/hr. doesn’t slide?

Answer

Central force = Friction force

mv2 /R = µN

mv2 /R =µmg

µ is equal to 0.25

Question 
A roundabout street of range 50 m has the point of banking equivalent to 30°. At what speed should a vehicle go on this street with the goal that the contact isn’t utilized?

Answer

tanθ = v2 /Rg

tan30° =v2 /(50*10)
v ≅ 17m/s

Question
In the Bohr model of the hydrogen molecule, the electron is treated as a molecule going in a circle with
the middle at the proton. The actual proton is thought to be fixed in an inertial casing. The centripetal
force is given by the Coulomb fascination. In the ground express, the electron goes round the proton
surrounded by range 5.3 × 10-11 m. Observe the speed of the electron in the ground state. Mass(weight) of the electron = 9.1 × 10-31 kg and charge of the electron = 1.6 × 10-19 C

Answer

We know that Coulomb force is equal to Centrifugal force

i.e =(9.1 × 10-31 )v2

v is equal to 2.2 × 106 m/s

Question 
A stone is attached to one finish of a string and is spun in an upward circle of sweep R. View as the
least speed the stone can have at the most elevated mark of the circle.

Answer

we know that at the peak point
T + mg = mv2 /R

For the lowest speed, T=0

mg = mv2 /R

v = √gR

FAQs on HC Verma Solutions Class 11 Chapter 7 Circular Motion

What is the distinction between rotational and translational movement?

Rotational movement is a movement where the body moves around a decent pivot without changing its situation. The decent point is known as the pivot of turn. Models - the turning of a top or roof fan, and so forth Translational movement is a movement where the body moves in an orderly fashion. It very well may be a sliding movement or moving or falling movement. Models a moving vehicle, a ball tossed from tallness, youngsters sliding down, and so forth.

What are the subjects canvassed in part 7 of class 11 Physics

The section examines the rotational movement, the focus of mass, straight energy of an arrangement of particles, vector results of two vectors, precise speed and its connection with direct speed, force, rakish energy, the balance of an unbending body, snapshot of dormancy, hypotheses of opposite and equal tomahawks, kinematics of rotational movement about a proper pivot, elements of rotational movement, precise energy if there should be an occurrence of revolution about a decent hub and moving movement.

What is the distinction between the focal point of mass and the focal point of gravity?

The Center of mass is the dissemination of the mass of a body in space. It is that remarkable place where the whole weight of the body or the amount of the dispersed mass of the body is zero. The Center of gravity is the point that is equivalent to the focal point of mass yet it serves the gravitational power. On account of a nonuniform field, likely energy and other gravitational impacts can presently not be determined by utilizing the focal point of mass since mass remaining parts consistent and gravity or weight of the body changes from one situation to another. Thusly, the focal point of gravity is utilized.

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