The given situation is shown in the figure. Magnetic field due to wire AB at the centre O is BAB=
µ0
4π
.
I
r
[sin45°+sin45°] =10−7×
2
2×10−2
[
1
√2
+
1
√2
] =√2×10−5T [Downward to the plane of square loop] Since, magnetic field due to side AB,BC,CD and DA is same in magnitude and direction. Hence, net magnetic field at O B=4×BAB=4√2×10−5T Wheatstone bridge in balanced condition maintains
P
Q
=
R
S
i.e. no current flows through the galvanometer (i.e. ig=0 )