Two equal negative point charges −q are fixed at points (0,a) and (0,−a) on the y-axis. A positive point charge Q is in rest at point (2a,0) on the x-axis. The net electric field on Q due to both −q charges will be (14πϵ0=k)
A
qka2
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B
4qk5√5a2
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C
4qk25a2
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D
4qk3a2
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Solution
The correct option is B4qk5√5a2 Let the charge Q be at P, with OP=x. The resultant field Er is along the x-axis directed towards the origin.
Let, AP=BP=r.
Then, the electric fields due to both the cahrges, E1=E2=q4πε0r2
From figure, the resultant field on Q is Er=E1cosθ+E2cosθ
Substituting the value of E1 and E2, we get Er=q4πε0r2cosθ+q4πε0r2cosθ
⇒Er=2q4πε0r2cosθ
Substituting the value of cosθ from figure, ⇒Er=2q4πε0x(a2+x2)32