In the figure shown `q` is in coulomb and t in second. At time `t=1 s` A. `V_a-V_b=4V`B. `V_b-V_c=1V`C. `V_c-V_d=16V`D. `V_a-V_b=20V`

In the figure shown `q` is in coulomb and t in second. At time `t=1 s`

1.	In the figure shown `q` is in coulomb and t in second. At time `t=1 s` A. `V_a-V_b=4V`B. `V_b-V_c=1V`C. `V_c-V_d=16V`D. `V_a-V_b=20V`
Answer» Correct Answer - A::B::C `q=2t^2` `i=(dq)/(dt)=4t` `(di)/(dt)=4A//s`s At `t=1s, q=2C,i=4A` and `(di)/(dt)=4A//s` `V_a-V_b=L(di)/(dt)=1xx4=4V` `V_b-V_c=q/C=2/2=1V` `V_C-V_d=ir=4xx4=16V` `V_a-V_d` is summation of above three i.e. `21V`.

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In the figure shown `q` is in coulomb and t in second. At time `t=1 s` A. `V_a-V_b=4V`B. `V_b-V_c=1V`C. `V_c-V_d=16V`D. `V_a-V_b=20V`

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