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The current in an L-R circuit builds upt...

The current in an `L-R` circuit builds upto `3//4th` of its steady state value in `4sec`. Then the time constant of this circuit is

A

`(1)/(ln 2)sec`

B

`(3)/(ln 2)sec`

C

`(4)/(ln 2)sec`

D

`(2)/(ln 2)sec`

Text Solution

Verified by Experts

`i = i_(0)(i-e^(-(Rt)/(L))), i = (3i_(0))/(4)` when `t = 4 sec`.
`(3 cancel(i_(0)))/(4) = cancel(i_(0))(1-e^(-(4R)/(L))), e^(-4//tau) = (1)/(4)`
`e^(4//tau) = 4`
`(4)/(2)= ln4 , tau = (4)/(2 ln 4) = (2)/(ln 2)`
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