Three parallel plate capacitors `C_(1) = 4 muF,C_(2) =2mu F,C_(3) = 6muF` with respective charges `q_(1) = 20 muC,q_(2) = 10 mu C,q_(3) =5 muC` are connected in series with a battery of `emf 10 V` through an open switch as shown. Now the switch is closed and steady state is reached. .A. The final charge on `C_(1) =30 muC`B. The final charge on `C_(2) = 20 muC`C. The final charge on `C_(2) = zero`D. The final charge on `C_(3) = 15 muC`

Three parallel plate capacitors `C_(1) = 4 muF,C_(2) =2mu F,C_(3) = 6m

1.	Three parallel plate capacitors `C_(1) = 4 muF,C_(2) =2mu F,C_(3) = 6muF` with respective charges `q_(1) = 20 muC,q_(2) = 10 mu C,q_(3) =5 muC` are connected in series with a battery of `emf 10 V` through an open switch as shown. Now the switch is closed and steady state is reached. .A. The final charge on `C_(1) =30 muC`B. The final charge on `C_(2) = 20 muC`C. The final charge on `C_(2) = zero`D. The final charge on `C_(3) = 15 muC`
Answer» Correct Answer - A::C::D After the switch is closed, let a charge `Q` be driven by the battery. Now, new charges on capacitors would become, `Q_(1)=(20+Q)muC ,Q_(2)=(10-Q)muC` `Q_(3)=(5+Q)muC (20+Q)/(4)-(10-Q)/(2)+(5+Q)/(6) =10` `60+3Q-60+6Q +10+2Q=120` `11Q =110 , Q=10 muC`.

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