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प्रश्न
An electron enters a uniform magnetic field B=0.23x10-2 Wb/m2 at 450 angle to B. Determine the radius and pitch of helical path. Assume electron speed to be 3x107 m/s.
योग
उत्तर
Given:- B=0.23x10-2 Wb/m2
v=3x107 m/s
e=1.6x10-19 C
m=9.1x10-31 kg
Formula: R=mv/eB
`R=(9.1×10^(−31)×3×10^7)/(1.6×10^(−19)×0.23×10^(−2))`
R=0.074 m
Thus the radius of helical path is 0.074m.
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Motion of Electron in Electric Field
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