A time-dependent but otherwise uniform magnetic field of magnitude B0(t) is confined in a cylindrical region of radius 6.5 cm. Initially the magnetic field in the region is pointed out of the page and - QAmmunity.org

A time-dependent but otherwise uniform magnetic field of magnitude B0(t) is confined in a cylindrical region of radius 6.5 cm. Initially the magnetic field in the region is pointed out of the page and

asked Oct 3, 2021 198k views

1 Answer

Answer:

The acceleration is
a = 3.45*10^(3) m/s^2

Step-by-step explanation:

From the question we are told that

The radius is
d = 6.5 cm = (6.5)/(100) = 0.065 m

The magnitude of the magnetic field is
B = 5.5 T

The rate at which it decreases is
(dB)/(dt) = 24.5G/s = 24.5*10^(-4) T/s

The distance from the center of field is
r = 1.5 cm = (1.5)/(100) = 0.015m

According to Faraday's law

$\epsilon = - (d \o)/(dt)$

and
$\epsilon = \int\limits {E} \, dl$

Where the magnetic flux
$\o = B* A$

E is the electric field

dl is a unit length

So

$\int\limits {E} \, dl = - (d)/(dt) (B*A)$

{E} l = - (d)/(dt) (B*A)

Now
is the circumference of the circular loop formed by the magnetic field and it mathematically represented as
$l = 2\pi r$

A is the area of the circular loop formed by the magnetic field and it mathematically represented as
$A= \pi r^2$

So

${E} (2 \pi r)= - \pi r^2 (dB)/(dt)$

E = (r)/(2) [ - (db)/(dt) ]

Substituting values

E = (0.015)/(2) (24*10^(-4))

E = 3.6*10^(-5) V/m

The negative signify the negative which is counterclockwise

The force acting on the proton is mathematically represented as

F_p = ma

Also
F_p = q E

So

ma = qE

Where m is the mass of the the proton which has a value of
m = 1.67 *10^(-27) kg

q = 1.602 *10^(-19) C

So

a =(1.60 *10^(-19) *(3.6 *10^(-5)) )/(1.67 *10^(-27))

a = 3.45*10^(3) m/s^2

Shareen answered Oct 8, 2021

4.9k points

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