A capacitor of capacitance `C_(0)` is charged to a patential `V_(0)` and then isolated. A small capacitor C is then charged from `C_(0)`, discharged and charge again, the process being is decreased to V. Find the value of C.

A capacitor of capacitance `C_(0)` is charged to a patential `V_(0)` a

1.	A capacitor of capacitance `C_(0)` is charged to a patential `V_(0)` and then isolated. A small capacitor C is then charged from `C_(0)`, discharged and charge again, the process being is decreased to V. Find the value of C.
Answer» Correct Answer - `C_(0)[(V_(0)/V)^(1/n)-1)]` `q_(0)=C_(0)V_(0)` After charging, `q_(1)=q_(0)(C_(0)/(C_(0)+C))` After discharging and again charging first time, `q_(0_(1))=(C_(0)V_(0))C_(0)/((C_(0)+C))=(C_(0)^(2)V_(0))/((C_(0)+C))` i.e. `V_(0_(1))=(C_(0)V_(0))/((C_(0)+C))` `q_(0_(2))=(q_(0_(1)))(C_(0))/(C_(0)+C)=(C_(0)^(3)V_(0))/((C_(0)+C)^(2))` `V_(0_(2))=(C_(0)/C_(0)+C)^(2)V_(0)` After nth chargeing `V_(0_(n))=V=(C_(0)/(C+C_(0)))^(n)V_(0)` or `(C_(0)/(C+C_(0)))^(n)=(V/V_(0))` `C/C_(0)+1=(V_(0)/V)^(1//n)` or `C=C_(0)(V_(0)/V)^(1//n)-C_(0)=C_(0)[(V_(0)/V)^(1//n)-1]`.

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A capacitor of capacitance `C_(0)` is charged to a patential `V_(0)` and then isolated. A small capacitor C is then charged from `C_(0)`, discharged and charge again, the process being is decreased to V. Find the value of C.

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