A cell of `1.5V` is connected across an inductor of `2mH` in series with a `2 Omega` resistor. What is the rate of growth of current immediately after the cell is switched on.

A cell of `1.5V` is connected across an inductor of `2mH` in series wi

1.	A cell of `1.5V` is connected across an inductor of `2mH` in series with a `2 Omega` resistor. What is the rate of growth of current immediately after the cell is switched on.
Answer» `E = L(dI)/(dt) + IR`, therefore, `(dI)/(dt) = (E- =IR)/(L)` `E = 1.5 "Volt", R = 2 Omega, L = 2mH = 2 xx 10^(-3)H` When the cell is switched on, `I = 0` Hence `(dI)/(dt) = (E)/(L) = (1.5)/(2 xx 10^(-3))As^(-1) = 750 As^(-1)`

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A cell of `1.5V` is connected across an inductor of `2mH` in series with a `2 Omega` resistor. What is the rate of growth of current immediately after the cell is switched on.

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