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A charge q is enclosed by an imaginary G...

A charge `q` is enclosed by an imaginary Gaussian surface.

If radius of surface is increasing at a rate `(dr)/(dt)= K`, then

A

flux linked with surface is increasing at a rate `(dphi)/(dt)=K`

B

flux linked with surface is decreasing at a rate `(dphi)/(dt)=-K`

C

flux linked with surface is decreasing at a rate `(dphi)/(dt)=(1)/(K)`

D

flux linked with surface is `(q)/(epsilon_(0))`

Text Solution

Verified by Experts

The correct Answer is:
d
From the Gauss, law `phi=(q_(enclosed))/(epsilon_(0))`
in which `q_(enclosed)` is the net charge inside an imaginary closed surface (a Gsussian surface) flux does not depend on the radius of imaginary enclosed surface.
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