Answer:
The current of the outer coil is
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Step-by-step explanation:
From the question we are told that
The number of turns of the inner coil is

The radius of the inner coil is
The current of the inner coil is

The number of turns of the outer coil is

The radius of the outer coil is

Generally the net magnetic field is mathematically represented as
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Now from told that the net magnetic field is common
So

Here
is the permeability of free space
making
the subject

substituting values

