A capacitor of 2μF is charged as shown in the diagram. When the switch S is turned to position 2, the percentage of its stored energy dissipated is :
A
0%
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B
20%
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C
75%
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D
80%
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Solution
The correct option is D80% Energy stored in capacitor is given by, Ui=12CV2=12×2(V)2
After connecting S to 2, Vcommon=C1V1+C2V2C1+C2=2V+8×010 Vcommon=V5
Energy stored in capacitor after changing position of the key is given by ∴Uf=12(2+8)(V5)2=V25
Percentage of energy dissipated, =(Ui−Uf)Ui×100=V2−V25V2×100 =80%