JEE Advanced · Physics · 18. Capacitance
A \(2 \mu \mathrm{F}\) capacitor is charged as shown in the figure. The percentage of its stored energy dissipated after the switch \(S\) is turned to position 2 , is
- A \(0 \%\)
- B \(20 \%\)
- C \(75 \%\)
- D \(80 \%\)
Answer & Solution
Correct Answer
(D) \(80 \%\)
Step-by-step Solution
Detailed explanation
\(q_i=C_i V=2 V=q\) (say)
This charge will remain constant after switch is shifted from position 1 to position 2.
\(
\begin{aligned}
U_i & =\frac{1}{2} \frac{q^2}{C_i}=\frac{q^2}{2 \times 2}=\frac{q^2}{4} \\
U_f & =\frac{1}{2} \frac{q^2}{C_f}=\frac{q^2}{2 \times 10}=\frac{q^2}{20}
\end{aligned}
\)
\(\therefore\) Energy dissipated \(=U_i-U_f=\frac{q^2}{5}\)
This energy dissipated \(\left(=\frac{q^2}{5}\right)\) is \(80 \%\) of the initial stored energy \(\left(=\frac{q^2}{4}\right)\).
Analysis of Question
(i) This question is moderately tough.
(ii) In a capacitor circuit, redistribution of charge takes place under following three conditions.
(a) A switch is closed.
(b) A closed switch is opened.
(c) A switch is shifted from one position to another position.
In the redistribution of charge, energy is dissipated.
This charge will remain constant after switch is shifted from position 1 to position 2.
\(
\begin{aligned}
U_i & =\frac{1}{2} \frac{q^2}{C_i}=\frac{q^2}{2 \times 2}=\frac{q^2}{4} \\
U_f & =\frac{1}{2} \frac{q^2}{C_f}=\frac{q^2}{2 \times 10}=\frac{q^2}{20}
\end{aligned}
\)
\(\therefore\) Energy dissipated \(=U_i-U_f=\frac{q^2}{5}\)
This energy dissipated \(\left(=\frac{q^2}{5}\right)\) is \(80 \%\) of the initial stored energy \(\left(=\frac{q^2}{4}\right)\).
Analysis of Question
(i) This question is moderately tough.
(ii) In a capacitor circuit, redistribution of charge takes place under following three conditions.
(a) A switch is closed.
(b) A closed switch is opened.
(c) A switch is shifted from one position to another position.
In the redistribution of charge, energy is dissipated.
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