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CBSE Class 12 Physics 2016 Delhi Set 1 Paper

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Question : 11
Total: 26
SECTION - C

A charge is distributed uniformly over a ring of radius ' a '. Obtain an expression for the electric intensity E at a point on the axis of the ring. Hence show that for points at large distances from the ring, it behaves like a point charge.
Solution:  
Obtaining an expression for electric field intensity
Showing behaviour at large distance
Net Electric Field at point P=
2Ï€a
∫
0
dE‌cos‌θ
dE= Electric field due to a small element having charge dq
=‌
1
4πε0
‌
dq
r2

Let λ‌=‌ Linear charge density ‌
‌=‌
dq
dl

dq‌=λdl
Hence E=
2Ï€a
∫
0
‌
1
4πε0
⋅‌
λdl
r2
×‌
x
r
 , where cos‌θ=‌
x
r
‌=‌
λx
4πε0r3
(2Ï€a)
‌=‌
1
4πε0
‌
Qx
(x2+a2)‌
3
2
,
where total charge Q=λ×2πa
At large distance i.e., x>>a
E≃‌
1
4πε0
⋅‌
Q
x2
This is the electric field due to a point charge at distance x .
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