n alpha particle (q = + 2e, m = 4.00 u) travels in a circular path of radius 5.94 cm in a uniform magnetic field with B = 1.10 T. Calculate (a) its speed, (b) its period of revolution, (c) its kinetic energy, and (d) the potential difference through which it would have to be accelerated to achieve this energy.

Question

Physics

Veronica Perkins

13 November, 22:09

n alpha particle (q = + 2e, m = 4.00 u) travels in a circular path of radius 5.94 cm in a uniform magnetic field with B = 1.10 T. Calculate (a) its speed, (b) its period of revolution, (c) its kinetic energy, and (d) the potential difference through which it would have to be accelerated to achieve this energy.

+1

Answers (1)

Know the Answer?

Savanah Mayer · Answer 1

a). V = 3.13*10⁶ m/s

b). T = 1.19*10^-7s

c). K. E = 2.04*10⁵

d). V = 1.02*10⁵V

Explanation:

q = + 2e

M = 4.0u

r = 5.94cm = 0.0594m

B = 1.10T

1u = 1.67 * 10^-27kg

M = 4.0 * 1.67*10^-27 = 6.68*10^-27kg

a). Centripetal force = magnetic force

Mv / r = qB

V = qBr / m

V = [ (2 * 1.60*10^-19) * 1.10 * 0.0594] / 6.68*10^-27

V = 2.09088 * 10^-20 / 6.68 * 10^-27

V = 3.13*10⁶ m/s

b). Period of revolution.

T = 2Πr / v

T = (2*π*0.0594) / 3.13*10⁶

T = 1.19*10⁻⁷s

c). kinetic energy = ½mv²

K. E = ½ * 6.68*10^-27 * (3.13*10⁶) ²

K. E = 3.27*10^-14J

1ev = 1.60*10^-19J

xeV = 3.27*10^-14J

X = 2.04*10⁵eV

K. E = 2.04*10⁵eV

d). K. E = qV

V = K / q

V = 2.04*10⁵ / (2eV) ... 2e-

V = 1.02*10⁵V