An Lc circuit contains a 40 mH inductor and a `25 mu F` capacitor. The resistance of the circuit is negligible.The time is measured from the instant t

Question

An Lc circuit contains a 40 mH inductor and a `25 mu F` capacitor. The resistance of the circuit is negligible.The time is measured from the instant t

An Lc circuit contains a 40 mH inductor and a `25 mu F` capacitor. The resistance of the circuit is negligible.The time is measured from the instant the circuit is closed. The energy stored in the circuit is completely magnetic at time (in milliseconds)
A. `0,3.14,6.28`
B. `0,1.57,4.71`
C. `1.57,4.71,7.85`
D. `1.57,3.14,4.71`

Monjur Alahi

4 views

2025-01-04 04:42

1 Answers

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Salim Ahmed Kawsar · Accepted Answer · 2023-02-05T15:29:48+06:00

Correct Answer - C
Here, `L = 40 mH = 40xx10^(-3)H`
`C = 25 mu F = 25xx10^(-6)F, upsilon = (1)/(2pi sqrt(LC))`
Substituting the given values, we get
`upsilon = (1)/(2pi sqrt(40xx10^(-3)xx25xx10^(-6)))=(10^(3))/(2pi)Hz`
`therefore T = (1)/(upsilon)=(2pi)/(10^(3))s=2pixx10^(-3)s=2pi ms`
Energy stored is completely electrical at times
`t=0, (T)/(2), T,(3)/(2)T`, .......
Energy stored is completely magnetic at times
`t=(T)/(4),(3)/(4)T,(5)/(4)T`, .........
Hence, `t=(pi)/(2)ms, (3pi)/(2)ms, (5pi)/(2)ms=1.57ms, 4.71 ms, 7.85 ms`