

The percentage change in \(B\) is given by: \[ \% \text{ change in } B = \frac{B_{\text{new}} - B_{\text{old}}}{B_{\text{old}}} \times 100\% \] Substitute the values: \[ = \frac{\mu_{\text{ni}} - \mu_{\text{ni0}}}{\mu_{\text{ni0}}} \times 100\% = \frac{\mu - \mu_0}{\mu_0} \times 100\% \] \[ = \frac{(\mu_0 \mu_r - \mu_0)}{\mu_0} \times 100\% \] \[ = (\mu_r - 1) \times 100\% \] Thus, the percentage change is: \[ \chi_n \times 100\% = 1.2 \times 10^{-3} \, \% \] \[ \boxed{\text{Percentage change in } B = 1.2 \times 10^{-3} \, \% } \]
Two long parallel wires X and Y, separated by a distance of 6 cm, carry currents of 5 A and 4 A, respectively, in opposite directions as shown in the figure. Magnitude of the resultant magnetic field at point P at a distance of 4 cm from wire Y is \( 3 \times 10^{-5} \) T. The value of \( x \), which represents the distance of point P from wire X, is ______ cm. (Take permeability of free space as \( \mu_0 = 4\pi \times 10^{-7} \) SI units.) 
A particle of charge $ q $, mass $ m $, and kinetic energy $ E $ enters in a magnetic field perpendicular to its velocity and undergoes a circular arc of radius $ r $. Which of the following curves represents the variation of $ r $ with $ E $?
 
The relationship between the magnetic susceptibility $ \chi $ and the magnetic permeability $ \mu $ is given by: 
$ \mu_0 $ is the permeability of free space and $ \mu_r $ is relative permeability.