1 Answer

Sajad Abbasi · Answer 1 · 2022-09-06T17:53:58+0000

Answer:

$f=1.98* 10^7\ Hz$

Step-by-step explanation:

Given that,

The radius of circle, r = 0.53 m

The magnitude of the magnetic field, B = 1.3 T

We need to find the oscillator frequency. It is given by :

$f=(qB)/(2\pi m)$

Put all the values,

$f=(1.6* 10^(-19)* 1.3)/(2\pi * 1.67* 10^(-27))\\\\f=1.98* 10^7\ Hz$

So, the oscillator frequency is
$1.98* 10^7\ Hz$ .

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