A capactior of `1 mu F` is connected ot an a.c. source of e.m.f `E = 250 sin 100 pi t`. Write an equation for instantaneous current through the circuit and given reading of a.c. ammeter connected in the circuit.

A capactior of `1 mu F` is connected ot an a.c. source of e.m.f `E = 2

1.	A capactior of `1 mu F` is connected ot an a.c. source of e.m.f `E = 250 sin 100 pi t`. Write an equation for instantaneous current through the circuit and given reading of a.c. ammeter connected in the circuit.
Answer» Here, `C = 1 mu F = 10^(-6) F` As `E = 250 sin 100 pi t` `:. E_(0) = 250 V, omega = 100 pi` The instantaneous current through the circuit is `I = I_(0) sin (omega t + pi//2) = (E_(0))/(1 // omega C) sin (omega t + pi // 2)` ` = 250 xx 100 pi xx 10^(-6) sin (100 pi t + pi // 2)` `I = 0.0786 sin (100 pi t + pi // 2)` Reading of a.c. ammeter `= I_(v)` `= (I_(0))/(sqrt 2) = (0.0786)/(sqrt 2) = 0.06 A`

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A capactior of `1 mu F` is connected ot an a.c. source of e.m.f `E = 250 sin 100 pi t`. Write an equation for instantaneous current through the circuit and given reading of a.c. ammeter connected in the circuit.

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