The area vector of a square loop of 5 turns of a conductor each with side length of 0.2 m carrying a current of 2 A is antiparallel to a uniform magnetic field of 50.0 T in which it lies.

Question

Physics

Darius Kemp

25 January, 19:27

The area vector of a square loop of 5 turns of a conductor each with side length of 0.2 m carrying a current of 2 A is antiparallel to a uniform magnetic field of 50.0 T in which it lies.

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Answers (1)

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Kara Hebert · Answer 1

the magnitude and the direction of the total magnetic field is 0.4 Am² antiparallel to the area vector

Explanation:

Given that:

The area vector of a square loop has 5 numbers of turns i. e n = 5

each with side length = 0.2 m

Current I = 2 A

uniform magnetic field = 50.0 T

Now; the magnitude of the total magnetic field B is calculated as:

B = IA

where;

I = current

A = area (n * l²)

B = I (n * l²)

B = 2 * 5 * 0.2²

B = 0.4 Am²

The direction of the magnetic moment is antiparallel to the area vector;

Hence; the magnitude and the direction of the total magnetic field is 0.4 Am² antiparallel to the area vector