Question

The frame shown is made of identical rods, each of length $L=1\text{m}$. A current of $i=2\text{A}$ 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 $B=1\text{T}$, acting perpendicular to the plane of the frame as shown. Find the total magnetic force acting on the frame (in newtons).

Answer 1

Given, the identical rods are of equal length.
$R_{CA}=R_{AD}=R_{CE}=R_{ED}$
& $R_{CD}=\frac{1}{2}{R}_{CA}$
[since $R\propto l$ for identical wire]

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


Make a loop $CADC$ carrying current $2\text{A}$
and a loop $CEDC$ carrying current $2\text{A}$
Then, the rod $CD$ carries current $8\text{A}$

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 $8\text{A}$.

Total magnetic force, $F=BiL\sin \theta =1\times 8\times 1\times \sin {90}^{\circ }=8\text{N}$