Embibe Experts Solutions for Chapter: Moving Charges and Magnetism, Exercise 1: Uttar Pradesh Board-2018
Embibe Experts Physics Solutions for Exercise - Embibe Experts Solutions for Chapter: Moving Charges and Magnetism, Exercise 1: Uttar Pradesh Board-2018
Attempt the practice questions on Chapter 4: Moving Charges and Magnetism, Exercise 1: Uttar Pradesh Board-2018 with hints and solutions to strengthen your understanding. EMBIBE CHAPTER WISE PREVIOUS YEAR PAPERS FOR PHYSICS solutions are prepared by Experienced Embibe Experts.
Questions from Embibe Experts Solutions for Chapter: Moving Charges and Magnetism, Exercise 1: Uttar Pradesh Board-2018 with Hints & Solutions
State Biot-Savart's law. A current of ampere is flowing through a circular loop of radius . Calculate the magnetic field at the centre of the loop.

Obtain the formula of coefficient of self-induction of a current carrying solenoid.

What is Ampere's circuit law? Derive the formula of magnetic field inside a current carrying solenoid with its help.

The resistance of the required shunt in order to pass of the main current in a galvanometer of resistance should be

Write down the vector form of Lorentz force acting on a moving charge in a uniform magnetic field. Two particles and having same charge after being accelerated by the same accelerating potential, enter perpendicular in a uniform magnetic field, so that they and respectively. Find out the ratio of the masses of and in terms of and .

A flat circular coil of radius has turns. A current of is passed through it. Calculate the magnetic field at a point on the axis of the coil of a distance of from its centre.

A Galvanometer is of resistance and current for full scale deflection is . What length of the shunt will be required so as to convert the galvanometer into an ammeter of range?
Area of cross-section of wire . Specific resistivity of the wire material.

A wire of length is turned in the form of a circular coil of turns and then suspended in a magnetic field . If current is passed in the coil, then obtain the formula for the maximum torque acting on the coil.
