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Question

The frame shown is made of identical rods, each of length L=1 m. A current of i=2 A is observed to be flowing through wire CA. The current enters at C and leaves at D. It is placed in a uniform magnetic field B=1 T, acting perpendicular to the plane of the frame as shown. Find the total magnetic force acting on the frame (in newtons).


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Solution

Given, the identical rods are of equal length.
RCA=RAD=RCE=RED
& RCD=12RCA
[since Rl for identical wire]

Hence, the current flowing in different branchs of the frame will be as follows:


Make a loop CADC carrying current 2 A
and a loop CEDC carrying current 2 A
Then, the rod CD carries current 8 A

We know that a current carrying loop in a uniform magnetic field experiences no net force.

Hence, force is only on the rod CD carrying 8 A.

Total magnetic force, F=BiLsinθ=1×8×1×sin90=8 N

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