A current of peak value √2 A flows through an inductor of 1/π H when connected to an AC source of 50 Hz. Then
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A current of peak value √2 A flows through an inductor of 1/π H when connected to an AC source of 50 Hz. Then

[From: ] [author: ] [Date: 12-03-31] [Hit: ]
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A current of peak value √2 A flows through an inductor of 1/π H when connected to an AC source of 50 Hz. Then the effective voltage of the source is

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x = 2π f L = 2*50 = 100

E = (1/√2)*100√2 = 100 V
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