H C Verma Solutions for Chapter: Geometrical Optics, Exercise 4: EXERCISES

Author:H C Verma

H C Verma Physics Solutions for Exercise - H C Verma Solutions for Chapter: Geometrical Optics, Exercise 4: EXERCISES

Attempt the practice questions on Chapter 18: Geometrical Optics, Exercise 4: EXERCISES with hints and solutions to strengthen your understanding. CONCEPTS OF PHYSICS [VOLUME 1] solutions are prepared by Experienced Embibe Experts.

Questions from H C Verma Solutions for Chapter: Geometrical Optics, Exercise 4: EXERCISES with Hints & Solutions

HARD
JEE Main
IMPORTANT

Two convex lenses, each of focal length 10 cm, are placed at a separation of 15 cm with their principal axes coinciding.

(a) Show that a light beam coming parallel to the principal axis diverges as it comes out of the lens system.

(b) Find the location of the virtual image formed by the lens system of an object placed far away.

(c) Find the focal length of the equivalent lens. (Note that the sign of the focal length is positive, although the lens system actually diverges a parallel beam incident on it).

HARD
JEE Main
IMPORTANT

A ball is kept at a height h above the surface of a heavy transparent sphere made of a material of refractive index μ. The radius of the sphere is R. At t=0, the ball is dropped to fall normally on the sphere. Find the speed of the image formed as a function of time for t<2hg. Consider only the image by a single refraction.

HARD
JEE Main
IMPORTANT

A particle is moving at a constant speed V from a large distance towards a concave mirror of radius R along its principal axis. Find the speed of the image formed by the mirror as a function of the distance x of the particle from the mirror.

HARD
JEE Main
IMPORTANT

A small block of mass m and a concave mirror of radius R fitted with a stand lies on a smooth horizontal table with a separation d between them. The mirror together with its stand has a mass m. The block is pushed at t=0 towards the mirror so that it starts moving towards the mirror at a constant speed V and collides with it. The collision is perfectly elastic. Find the velocity of the image

(a) at a time t<d V,
(b) at a time t>dV.

HARD
JEE Main
IMPORTANT

A gun of mass M fires a bullet of mass m with a horizontal speed V. The gun is fitted with a concave mirror of focal length f facing towards the receding bullet. Find the speed of separation of the bullet and the image just after the gun was fired.

HARD
JEE Main
IMPORTANT

A mass m=50 g is dropped on a vertical spring of spring constant 500 N m-1 from a height h=10 cm as shown in figure.

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The mass sticks to the spring and executes simple harmonic oscillations after that. A concave mirror of focal length 12 cm facing the mass is fixed with its principal axis coinciding with the line of motion of the mass, its pole being at a distance of 30 cm from the free end of the spring. Find the length in which the image of the mass oscillates.

HARD
JEE Main
IMPORTANT

Two concave mirrors of equal radii of curvature R are fixed on a stand facing opposite directions. The whole system has a mass m and is kept on a frictionless horizontal table as shown in the figure. Two blocks A and B, each of mass m, are placed on the two sides of the stand. At t=0, the separation between A and the mirrors is 2R and also the separation between B and the mirrors is 2R. The block B moves towards the mirror at a speed V. All the collisions which take place are elastic. Taking the original position of the mirrors-stand system to be x=0 and X-axis along AB. Find the position of the images of A and B at t=

a RV b 3RV c 5RV

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HARD
JEE Main
IMPORTANT

Consider the situation shown in figure. The elevator is going up with an acceleration of 2.00 m s-2 and the focal length of the mirror is 12.0 cm. All the surfaces are smooth and the pulley is light. The mass-pulley system is released from rest (with respect to the elevator) at t=0 when the distance of B from the mirror is 42.0 cm. Find the distance between the image of the block B and the mirror at t=0.200 s. Take g=10 m s-2.

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