In the circuit shown in figure, circuit is closed at time `t=0`. At time `t=ln(2)` second A. rate of energy supplied by the battery is 16 J/sB. rate of heat dissipated across resistance is 8J/sC. rate of heat dissipated across resistance is 16 J/sD. `V_a-V_b=4V`

In the circuit shown in figure, circuit is closed at time `t=0`. At ti

1.	In the circuit shown in figure, circuit is closed at time `t=0`. At time `t=ln(2)` second A. rate of energy supplied by the battery is 16 J/sB. rate of heat dissipated across resistance is 8J/sC. rate of heat dissipated across resistance is 16 J/sD. `V_a-V_b=4V`
Answer» Correct Answer - A::B::D `tau_L=L/R=2/2=1s` `t 1/2=(ln 2) tau_L=(ln 2) s` Hence the given time is half time. `:. i=i_0/2=(8//2)/2=2A` Rate of energy supplied by battery `=Ei=8xx2=16J//s` `P_R=i^2R=(2)^2(2)=8J//s` `V_a-V_b=E-iR=9-2xx2=4V`

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In the circuit shown in figure, circuit is closed at time `t=0`. At time `t=ln(2)` second A. rate of energy supplied by the battery is 16 J/sB. rate of heat dissipated across resistance is 8J/sC. rate of heat dissipated across resistance is 16 J/sD. `V_a-V_b=4V`

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