Electromagnetic Induction
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New answer posted
8 months agoContributor-Level 10
6.3 Number of turns on the solenoid = 15 turns per cm = 1500 turns per m
Hence, number of turns per unit length, n = 1500
The loop area in the solenoid, A = 2.0 = 2
Current carrying by the solenoid, changes from 2 .0 A to 4.0 A
So, change of current, di = 4 – 2 = 2 A
Change in time, dt = 0.1 s
According to Faraday's law, the induced emf, e = …………. (i)
Where = induced flux through the small loop = BA …………. (ii)
Magnetic field is given by B = ……………………………. (iii)
Where = Permeability of free space = 4 H/m
From equation (i),
e =
New answer posted
8 months agoContributor-Level 10
6.2 (a) As the loop changes from irregular to circular shape, its area increases. Hence the magnetic flux linked with it also increases. According to Lenz's law, the induced current should produce magnetic flux in the opposite direction of the original flux. For this induced current should flow in the anti-clockwise direction, i.e. adcb.
(b) As this circular loop is being deformed into a narrow straight wire, its area decreases. The magnetic flux linked also decreases. By Lenz's law, the induced current should produce a flux in the direction of the original flux. For this the induced current should flow in the anti-clock wise direction
New answer posted
8 months agoContributor-Level 10
6.1

The direction of the induced current in a closed loop is given by Lenz's law. The given pairs of figures show the direction of the induced current when the North pole of a bar magnet is moved towards and away from a closed loop respectively.
Using Lenz's rule, the direction of the induced current in the given situation can be predicted as follows:
The direction of the induced current is along 'qrpq'.
The direction of the induced current is along 'prqp'.
The direction of the induced current is along 'yzxy'.
The direction of the induced current is along 'zyxz'.
The direction of the induced current is along 'xryx'.
No current is induced since
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