In a 1.25-T magnetic field directed vertically upward, a particle having a charge of magnitude 8.50 mC and initially moving northward at 4.75 km>s is deflected toward the east.

(a) What is the sign of the charge of this particle.

(b). Find the magnetic force on the particle.

(a). Since the charge enters the magnetic field and was deflected it carries a + ve charge

(b). The magnetic force on the particle is given as

F = Bqv

Where B = magnetic field in Tesla T

1.25-T

q = charge 8.50 mC

v = average velocity of charge

4.75 km/s converting to

m/s we have 4.75*1000 = 4750m/s

Substituting our given corresponding data we have

F = 1.25*8.50*10^-3*4750

F = 50.47N

The magnetic force on the particle is 50.47N