A current of exists in a square loop of side . Then the magnitude of the magnetic field at the centre of the square loop will be . Where, value of is:
JEE Physics 2025 Question with Solution
Answer
Correct answer:8
Step-by-step solution
Standard Method
Given:
- Current
- Side of square loop
Find: The value of in .
For one side of the square, the magnetic field at the centre is written as
At the centre of the square, for each side,
So,
Using the working shown in the solution,
This is the field due to one side.
Since there are four sides of the square loop,
Therefore, comparing with , we get .

Explanation from the Given Working
Given: The loop is square and all four sides are symmetrically placed about the centre.
Find: Net magnetic field at the centre.
The solution uses the magnetic field formula for a finite straight wire segment. Because the centre is equidistant from all four sides, each side contributes the same magnetic field magnitude, and all contributions are in the same direction perpendicular to the plane of the loop.
For one side,
Hence the total field is obtained by multiplying by :
So the required numerical value is .
Note: the solution uses an intermediate distance value in the substitution step; however, its final computed result is clearly stated as , so the answer is taken as .
Common mistakes
Using the side of the square directly as the perpendicular distance from the centre to a side. This is wrong because the centre-to-side distance is not equal to the full side length. Always identify the correct geometry before substitution.
Forgetting that the magnetic field from all four sides adds at the centre. This is wrong because each side produces equal magnetic field in the same perpendicular direction there. First find the field due to one side, then multiply by .
Taking the wire-angle factors incorrectly, such as using instead of for each end. This is wrong because the centre sees each side symmetrically, so the two angles for one side are and in the shown working.
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