State Coulomb’s law of force between electric charges - Leaving Cert Physics - Question d - 2017

When the switch is closed, current flows in the circuit. This results in the capacitor charging up, causing the bulb to initially light up. As the capacitor charges, the current reduces, and the bulb may eventually dim.

If a 12 V a.c. power supply were used, the bulb would continuously light up and dim as the alternating current (a.c.) oscillates. The capacitor would charge and discharge with each cycle of the a.c. supply, resulting in a fluctuating brightness.

The charge (Q) stored in a capacitor is given by the formula: $Q = C imes V$ where:

• C is the capacitance (6 × 10⁻⁶ F)
• V is the voltage (12 V)

Substituting the values gives: $Q = (6 imes 10^{-6} ext{ F}) imes (12 ext{ V}) = 7.2 imes 10^{-5} ext{ C}$ Thus, the charge stored on the capacitor is 7.2 × 10⁻⁵ C.

One application of a capacitor is in filtering circuits, where it is used to smooth out fluctuations in voltage, as in power supply circuits.