Answer:
The magnitude of the magnetic field is [tex]1.1\times 10^{-4}\, T[/tex]
Explanation:
Given charge q = −8.3 μC
speed of charge [tex]v=7.4\times 10^{6}\, \frac{m}{s}[/tex]
Angle between magnetic field and the velocity of charge [tex]\Theta =52^{\circ}[/tex]
Strength of magnetic force on charge [tex]F=5.4\times 10^{6}\, N[/tex]
Let magnitude of magnetic field be B
Since the magnetic force on a free moving charge in the magnetic field given by
[tex]F=\left |q\vec{v}\times \vec{B}\right |=\left | qvBsin\Theta\right |[/tex]
=>[tex]5.4\times 10^{-3}=\left | -8.3\times 10^{-6}\times 7.4\times 10^{6}\times sin(52^{\circ})\times B \right |[/tex]
=>[tex]B=1.1\times 10^{-4}\, T[/tex]
Thus the magnitude of the magnetic field is [tex]1.1\times 10^{-4}\, T[/tex]
