The capacitors in are initially uncharged and are cannected as in the diagram with switch S open. The applied potential differnce is V_(ab)= +360 V. . a. What is the potential differnce V_(cd) b What is the potential deffernce across each capacitor afrer switch S is closed? c. How much charge will flow through the awitch after it is closed?

The capacitors in are initially uncharged and are cannected as in the

1.	The capacitors in are initially uncharged and are cannected as in the diagram with switch S open. The applied potential differnce is V_(ab)= +360 V. . a. What is the potential differnce V_(cd) b What is the potential deffernce across each capacitor afrer switch S is closed? c. How much charge will flow through the awitch after it is closed?
Answer» Solution :(a) Refer to `V_(a)V_(d)=6/(6+3)xx360=240 V` and `V_(a)-V_(c)=3/(6+3)xx360=120 V` (b) Refer to . `V_(a)-V_(c)=V_(a)-V_(d)=V_(d)-V_(b)=V_(c)-V_(b)` `=(360)/2=180 V` That is, POTENTIAL across each capacitor is `180 V` c. Charge flowing after the SWITCH is closed: `Deltaq_(1)=1080-720=360 muC` `Deltaq_(2)=720-540=180 muC` Now, `Deltaq=Deltaq_(1) + Deltaq_(2) = 360 + 180 = 540 mu C` Hence, charge of `540 muC` flows from `c` and `d ` after closing the switch. .

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