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प्रश्न
When an AC source is connected across a pure capacitor, the correct phase relation between current (ic) and voltage (ec) is shown in the figure.
 |
 |
 |
 |
| (A) | (B) | (C) | (D) |
विकल्प
(A)
(D)
(B)
(C)
MCQ
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उत्तर
(B)
Explanation:
The voltage across a pure capacitor in an AC circuit is given by,
ec = e0 sinωt ..............(i)
and current across it is given by,
`i_c = i_0 sin(omegat + pi/2)` ...........(ii)
From Eqs. (i) and (ii), we observe that the current in the capacitor is leading the voltage by `pi/2`. So, the correct phase of the diagram is shown in Figure B.
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