Charges Q_0 and 2Q_0 are given to parallel plates A and B, respectively, and they are separated by a small distance. The capacitance of the given arrangement is C. Now, plates A and B are connected to positive and negative terminals of battery of potential difference V = 2Q_0//C respectively, as shown, then the work done by the battery is

Charges Q_0 and 2Q_0 are given to parallel plates A and B, respectivel

1.	Charges Q_0 and 2Q_0 are given to parallel plates A and B, respectively, and they are separated by a small distance. The capacitance of the given arrangement is C. Now, plates A and B are connected to positive and negative terminals of battery of potential difference V = 2Q_0//C respectively, as shown, then the work done by the battery is
Answer» `(2Q_(0)^(2))/C` `(4Q_(0)^(2))/C` `(5Q_(0)^(2))/C` `(6Q_(0)^(2))/C` Solution :c. After connection the charge of capacitor `Q'=CV=C(2Q_(0))/(C)=2Q_(0)` The final charge in INNER plate of `A` will be `2Q_(0)`. HENCE charge supplied by BATTERY `DeltaQ=(2Q-((-Q_(0))/(2)))=(5Q_(0))/(2)` Hence work done by battery `W=(DeltaQ)V=(5Q_(0))/(2)xx(2Q_(0))/(C)=(5Q_(0)^(2))/(C)`

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