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Question

From a cylinder of radius R, a cylinder of radius R/2 is removed. Current flowing in the remaining cylinder is I. Magnetic field strength is


A
zero at point A
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B
zero at point B
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C
μ0I3πR at point A
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D
μ0I3πR at point B
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Solution

The correct options are
C μ0I3πR at point A
D μ0I3πR at point B
Since current carried by the part is proportional to the area of that part, the removed part of radius R/2 has area A/4 and the remaining part of the cylinder has area 3A/4.

Current carried by the removed part of the cylinder of radius R/2
=13× current carried by remaining part of the cylinder
=I/3

Therefore, we can consider the given cylinder as a combination of two cylinders. One of radius R carrying current 4I/3 in one direction and the other of radius R/2 carrying current I/3 in opposite direction.

For cylinder,

B =μoir2πR2 ; r<R =μoi2πr; rR

At point A:

B = 0+μoI/32π R/2 = μoI3πR

At point B:

B = μo2πR2(4I3)(R2) + 0 = μoI3πR

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