electrostatic-potential-and-capacitance Question 7

Question: Q. 6. A point charge $+Q$ is placed at point $O$ as shown in the figure. Is the potential difference $V_{A}-V_{B}$ positive, negative or zero?

U] [Delhi Set I, II, III 2016]

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Solution:

Ans. Positive.

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Detailed Answer :

Let $O A=r_{A}, O B=r_{B}$

$$ V_{A}-V_{B}=\frac{1}{4 \pi \varepsilon_{0}} \cdot Q\left(\frac{1}{r_{A}}-\frac{1}{r_{B}}\right) $$

Since $\frac{1}{r_{\mathrm{A}}}-\frac{1}{r_{\mathrm{B}}}$ is positive quantity. Hence, $V_{A}-V_{B}$ is positive.

Answering Tip

  • If $r_{A}<r_{B}$

Then $\frac{1}{r_{\mathrm{A}}}>\frac{1}{r_{\mathrm{B}}}$

So, $\frac{1}{r_{\mathrm{A}}}-\frac{1}{r_{\mathrm{B}}}=+$ ve

[बI Q. 7. A charge ’ $q$ ’ is moved from a point $A$ above a dipole of dipole moment ’ $p$ ’ to a point $B$ below the dipole in equatorial plane without acceleration. Find the work done in the process.

U [O.D. I, II, III 2016]

Ans. No work is done.

$$ \begin{equation*} W=q V_{A B}=q \times 0=0 \tag{1} \end{equation*} $$

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Detailed Answer :

It is seen that potential due to dipole at any point on equatorial line in equatorial plane is zero. From the figure, points $A & B$ lies in equatorial plane of dipole, where work done in moving charge ’ $q$ ’ from point $A$ to $B$ without acceleration will be zero. 1



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