MHT CET · Physics · Electrostatics
' \(F\) ' is the force between the two identical charged particles placed at a distance ' \(\mathrm{Y}\) ' from each other. If the distance between the charges is reduced to half the previous distance, then force between them becomes
- A \(\frac{F}{4}\)
- B \(4 \mathrm{~F}\)
- C \(2 \mathrm{~F}\)
- D \(\frac{\mathrm{F}}{2}\)
Answer & Solution
Correct Answer
(B) \(4 \mathrm{~F}\)
Step-by-step Solution
Detailed explanation
\(
\begin{aligned}
& \mathrm{F}=\frac{1}{4 \pi \varepsilon_0} \cdot \frac{\mathrm{q}^2}{\mathrm{r}^2} \\
& \therefore \frac{\mathrm{F}_2}{\mathrm{~F}_1}=\left(\frac{\mathrm{r}_1}{\mathrm{r}_2}\right)^2=(2)^2=4 \\
& \therefore \mathrm{F}_2=4 \mathrm{~F}_1
\end{aligned}
\)
\begin{aligned}
& \mathrm{F}=\frac{1}{4 \pi \varepsilon_0} \cdot \frac{\mathrm{q}^2}{\mathrm{r}^2} \\
& \therefore \frac{\mathrm{F}_2}{\mathrm{~F}_1}=\left(\frac{\mathrm{r}_1}{\mathrm{r}_2}\right)^2=(2)^2=4 \\
& \therefore \mathrm{F}_2=4 \mathrm{~F}_1
\end{aligned}
\)
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