In the circuit shown, the switch S has been close for a long time. At time t=0 the switch is opened. It remains open for a long time T, after which it is closed again.

In the circuit shown, the switch S has been close for a long time. At

1.	In the circuit shown, the switch S has been close for a long time. At time t=0 the switch is opened. It remains open for a long time T, after which it is closed again.
Answer» voltage drop across `100 k Omega` RESISTER is `10e^(-t//1.5)V` for `tltT` voltage drop cross `100kOmega` resister is `(20e^(-t//1.5))/3V` for `tltT` voltage drop acros `100OkOmega` resister is `100(e^(T-t)-e^((T-3t)//3))` for `tgtT` The time constant of the circuit is `1.5` sec for `tgtT` Solution :When the which `'S'` is opened, `tau=RC=1.5`sec Voltage across the capacitor `V_(C)=10(1-e^(-t/1.5))` for `tltT` The CURRENT `i=(dQ)/(DT)=C(dV_(c))/(dt)` `=200/3xx10^(-6)(e^(-t//1.5))` for `tltT` Voltage drop across `100k mu` resister, `V=iR=20/3e^(-t//1.5)` for `t lt T` After `t=T`, `tau=100xxkOmegaxx10 mu F=1` sec Voltage across capacitor `V_(c)=V_(@)t^(-[(t-T)//tau])=10(1-e^(-T//1.5)),e^(-[(t-\|T)//1])` The charge on capaclitor, `Q=V_(c).C` The current thorugh `100 k mu` resistor `i=-C(dV_(c))/(dt)=10^(-3)(1-e^(-T//1.5))(1-e^(-(t/T)//1))`

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In the circuit shown, the switch S has been close for a long time. At time t=0 the switch is opened. It remains open for a long time T, after which it is closed again.

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