Electrostatics 1 Question 5

5. Three charges $+Q, q,+Q$ are placed respectively at distance $0, \frac{d}{2}$ and $d$ from the origin on the $X$-axis. If the net force experienced by $+Q$ placed at $x=0$ is zero, then value of $q$ is

(a) $\frac{+Q}{2}$

(b) $\frac{+Q}{4}$

(c) $\frac{-Q}{2}$

(d) $\frac{-Q}{4}$

(Main 2019, 9 Jan Shift I)

Show Answer

Answer:

Correct Answer: 5. (d)

Solution:

  1. The given condition is shown in the figure given below,

Then, according to the Coulomb’s law, the electrostatic force between two charges $q _1$ and $q _2$ such that the distance between them is $(r)$ given as,

$$ F=\frac{1 \cdot q _1 q _2}{4 \pi \varepsilon _0 \cdot r^{2}} $$

$\therefore$ Net force on charge ’ $Q$ ’ placed at origin i.e. at $x=0$ in accordance with the principle of superposition can be given as

$$ F _{net}=\frac{1}{4 \pi \varepsilon _0} \cdot \frac{Q \times q}{\frac{d}{2}}+\frac{1}{4 \pi \varepsilon _0} \cdot \frac{Q \times Q}{(d)^{2}} $$

Since, it has been given that, $F _{\text {net }}=0$.

$$ \begin{aligned} & \Rightarrow \quad \frac{1}{4 \pi \varepsilon _0} \cdot \frac{Q \times q}{\frac{d}{2}}+\frac{1}{4 \pi \varepsilon _0} \cdot \frac{Q \times Q}{(d)^{2}}=0 \\ & \Rightarrow \quad \frac{1}{4 \pi \varepsilon _0} \cdot \frac{Q \times q}{\frac{d^{2}}{2}}=-\frac{1}{4 \pi \varepsilon _0} \cdot \frac{Q \times Q}{(d)^{2}} \text { or } q=-\frac{Q}{4} \end{aligned} $$



NCERT Chapter Video Solution

Dual Pane