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Question

A parallel plate capacitor of capacitance C is connected to a battery and is charged to a voltage V. Another capacitor of capacitance 2C is similarly charged to a voltage 2V. The batteries are disconnected and the capacitors are connected in parallel to each other in such a way that the positive terminal of one is connected to the negative terminal of the other capacitor. The final energy of the configuration is

A
25CV26
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B
9CV22
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C
3CV22
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D
0
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Solution

The correct option is C 3CV22
Charge on the first capacitor, Q1=CV


Charge on the second capacitor, Q2=4CV


When they are connected together like this


The common voltage of above condition will be

Vc=Q2Q1C1+C2

Vc=4CVCVC+2C=V

As they are now in parallel connection, so equivalent capacitance will be

Ceq=C+2C=3C

So, the energy stored in the capacitor is given by

U=12(3C)V2=32CV2

Hence, option (b) is correct.

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