JAMB - Physics (2005 - No. 42)

The figure above shows three capacitors, 2μF, 3μF and 6μF connected in series. If the p.d across the system is 12V, the p.d, across the 6μF capacitor is

12V

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The effective capacitance in the circuit is given by:
1/C = ¹/₂ + ¹/₃ + ¹/₆ = ⁶/₆
therefore C = 1μF or
1.0 x 10^-6F.
Since C = Q/V, its implies that the charges Q, flowing in the circuit is given by Q = CV
= 1.0 x 10^-6 x 12
= 12.0 x 10^-6 Coulomb.
∴ P.d across the 6μF,

V = Q/C =	12.0 x 10^-6
	6.0 x 10^-6F

= 2.0 volts

JAMB - Physics (2005 - No. 42)

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