A 6 μF capacitor is charged by a 100V supply. It is then disconnected from the supply and μ is connected to another uncharged 3μF capacitor. How much electrostatic energy of the first capacitor is dissipated in the form of heat and electromagnetic radiation?(a) 3 x 10^-2 J(b) 2 x 10^-2 J(c) 1 x 10^-2 J(d) 4 x 10^-2 JI got this question in exam.Origin of the question is Energy Stored in a Capacitor topic in division Electrostatic Potential and Capacitance of Physics – Class 12

A 6 μF capacitor is charged by a 100V supply. It is then disconnected

1.	A 6 μF capacitor is charged by a 100V supply. It is then disconnected from the supply and μ is connected to another uncharged 3μF capacitor. How much electrostatic energy of the first capacitor is dissipated in the form of heat and electromagnetic radiation?(a) 3 x 10^-2 J(b) 2 x 10^-2 J(c) 1 x 10^-2 J(d) 4 x 10^-2 JI got this question in exam.Origin of the question is Energy Stored in a Capacitor topic in division Electrostatic Potential and Capacitance of Physics – Class 12
Answer» Right choice is (c) 1 X 10^-2 J The best explanation: Given: C1 = 6μF; V1 = 100 V Initial energy stored (U1) = \(\FRAC {1}{2}\) C1V1^2 = \(\frac {1}{2}\) × 6 × 10^-6 × 100 × 100 = 3 × 10^-2 J Potential (V) = \(\frac {C_1V_1}{(C_1+C_2)}\) = 6 × 10^-6 × \(\frac {100}{(6+3)}\) × 10^-6 = \(\frac {600}{9}\) V Final energy (U2) = \(\frac {1}{2}\) (C1 + C2) × V^2 = \(\frac {1}{2}\) × 9 × 10^-6 × \(\frac {1}{2} \times \frac {600}{9} \times \frac {600}{9}\) = 2 × 10^-2 J Therefore, the energy dissipated in the form of heat and electromagnetic radiation is: U2 – U1 = 3 × 10^-2 – 2 × 10^-2 U2 – U1 = 1 × 10^-2 J

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