MHT CET · Physics · Electrostatics
Two point charges \(+8 q\) and \(-2 q\) are located at \(x=0\) and \(x=\mathrm{L}\) respectively. The location of a point on the \(x\)-axis from the origin, at which the net electric field due to these two point charges is zero is
- A \(\frac{\mathrm{L}}{4}\)
- B 4 L
- C 8 L
- D 2 L
Answer & Solution
Correct Answer
(D) 2 L
Step-by-step Solution
Detailed explanation
Let ' \(A\) ' be the point at a distance \(r\) from \(-2 q\) and at \((L+r)\) from \(+8 q\) where net electric field is zero.
\(\mathrm{E}_1=\mathrm{E}_2\)
\(\begin{array}{ll}
\therefore & \frac{\mathrm{K}(8 q)}{(L+r)^2}=\frac{K(2 q)}{r^2} \\
\therefore \quad & \frac{4}{(L+r)^2}=\frac{1}{r^2} \\
& 2 r=L+r \\
& r=L \\
& A=L+L=2 L
\end{array}\)
\(\mathrm{E}_1=\mathrm{E}_2\)
\(\begin{array}{ll}
\therefore & \frac{\mathrm{K}(8 q)}{(L+r)^2}=\frac{K(2 q)}{r^2} \\
\therefore \quad & \frac{4}{(L+r)^2}=\frac{1}{r^2} \\
& 2 r=L+r \\
& r=L \\
& A=L+L=2 L
\end{array}\)
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