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Question -

An electron emitted by a heatedcathode and accelerated through a potential difference of 2.0 kV, enters aregion with uniform magnetic field of 0.15 T. Determine the trajectory of theelectron if the field (a) is transverse to its initial velocity, (b) makes anangle of 30º with the initial velocity.



Answer -

Magnetic field strength, B =0.15 T

Charge on the electron, e =1.6 × 10−19 C

Mass of the electron, m =9.1 × 10−31 kg

Potential difference, V =2.0 kV = 2 × 103 V

Thus, kinetic energy of theelectron = eV

Where,

=velocity of the electron

(a) Magneticforce on the electron provides the required centripetal force of the electron.Hence, the electron traces a circular path of radius r.

Magnetic force on the electron isgiven by the relation,

B ev

Centripetalforce 

From equations (1) and (2), weget

Hence, the electron has acircular trajectory of radius 1.0 mm normal to the magnetic field.

(b) Whenthe field makes an angle θ of 30° with initial velocity, theinitial velocity will be,

From equation (2), we can writethe expression for new radius as:

Hence, the electron has a helicaltrajectory of radius 0.5 mm along the magnetic field direction.

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