In the figure shown, after the switch ‘S’ is turned from position ‘A’ to position ‘B’, the energy dissipated in the circuit in terms of

Q: In the figure shown, after the switch $‘S’$ is turned from position $‘A’$ to position $‘B’$, the energy dissipated in the circuit in terms of capacitance $‘C’$ and total charge $‘Q’$ is

b Before switch is shifted: Energy stored, $\mathrm{U}_{1}=\frac{1}{2} \mathrm{CE}^{2}$ and charge stored, $Q=C E$ After switch is shifted: $V_{M}-V_{N}=\frac{Q}{4 C}=\frac{C E}{4 C}=\frac{E}{4}$ Energy stored, $U_{f}=\frac{1}{2}(4 \mathrm{C})\left(\frac{E}{4}\right)^{2}=\frac{1}{8} \mathrm{CE}^{2}$ Energy dissipated $=U_{i}-U_{f}=\frac{3}{8} C E^{2}$

SECTION - A [PHYSICS - MCQ]

GSEB - English Medium

In the figure shown, after the switch $‘S’$ is turned from position $‘A’$ to position $‘B’$, the energy dissipated in the circuit in terms of capacitance $‘C’$ and total charge $‘Q’$ is

A$\frac{1}{8}\frac{{{Q^2}}}{C}$
B$\frac{3}{8}\frac{{{Q^2}}}{C}$
C$\frac{5}{8}\frac{{{Q^2}}}{C}$
D$\frac{3}{4}\frac{{{Q^2}}}{C}$

JEE MAIN 2019, Diffcult

STD 11 Science
NEET
STD 12 - 2. Electric potential and capacitance
Physics

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