Energy Stored in a Capacitor

Author:David Sang & Graham Jones
AS and A Level
IMPORTANT

Important Questions on Energy Stored in a Capacitor

EASY
IMPORTANT

A capacitor in an electronic circuit is designed to slowly discharge through an indicator lamp. It is decided that the time taken for the capacitor to discharge needs to be increased. Four changes are suggested:

(1) Connect a second capacitor in parallel with the original capacitor.

(2) Connect a second capacitor in series with the original capacitor.

(3) Connect a resistor in parallel with the lamp.

(4) Connect a resistor in series with the lamp.

Which suggestions would lead to the discharge time being increased?

MEDIUM
IMPORTANT

A circuit contains capacitors of capacitance 500μF and 2000μF in series with each other and in series with a resistance of 2.5kΩ. Calculate the time taken for the charge on the plates to fall to 5% of the charge when there was a p.d. of 50 V across the plates.

EASY
IMPORTANT

 A circuit contains capacitors of capacitance 500μF and 2000μF In series with each other and in series with a resistance of 2.5kΩ.

Calculate the effective capacitance of the capacitors in series.

EASY
IMPORTANT

A second capacitor of the same value is connected in series with the first capacitor.

Discuss the effect on both the current recorded and the power dissipated in the resistor.

EASY
IMPORTANT

This is a circuit that can be used to measure the capacitance of a capacitor.

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The reed switch vibrates back and forth at a frequency of 50 Hz. Each time it makes contact with A, the capacitor is charged by the battery so that there is a p.d. of 12 V across it. Each time it makes contact with B, it is fully discharged through the resistor.

Calculate the average current in the resistor.

EASY
IMPORTANT

Figure shows two identical conducting brass spheres of radius 10 cm mounted on insulating stands. Sphere A has a charge of +5.0 × 10-8 C and sphere B is uncharged.

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Suggest why there is a change in the total energy of the system.

MEDIUM
IMPORTANT

Figure shows two identical conducting brass spheres of radius 10 cm mounted on insulating stands. Sphere A has a charge of +5.0 × 10-8 C and sphere B is uncharged.

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Calculate the energy stored on each sphere.

EASY
IMPORTANT

Figure shows two identical conducting brass spheres of radius 10 cm mounted on insulating stands. Sphere A has a charge of +5.0 × 10-8 C and sphere B is uncharged.

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Calculate the potential at the surface of sphere A.

MEDIUM
IMPORTANT

Show that the capacitance C of an isolated conducting sphere of radius r is given by the formula: C=4πε0r.Question Image

EASY
IMPORTANT

Suggest why the discharge ceases while there is still some charge on the dome.

EASY
IMPORTANT

This is a circuit used to investigate the discharge of a capacitor, and a graph showing the change in current with time when the capacitor is discharged.

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The charge on the capacitor is equal to the area under the graph. Estimate the charge on the capacitor when the potential difference across it is 9.0 V.

EASY
IMPORTANT

This is a circuit used to investigate the discharge of a capacitor, and a graph showing the change in current with time when the capacitor is discharged.

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Explain why the current decreases as the capacitor discharges.

EASY
IMPORTANT

This is a circuit used to investigate the discharge of a capacitor, and a graph showing the change in current with time when the capacitor is discharged.

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Deduce the resistance R of the resistor.

EASY
IMPORTANT

(a) State one use of a capacitor in a simple electric circuit.

EASY
IMPORTANT

A 4700μF capacitor has a p.d. of 12 V across its terminals. Calculate the charge stored on the capacitor.

EASY
IMPORTANT

Given a 5000μF capacitor has a p.d. of 24 V across its plates.The capacitor is briefly connected across a bulb and half the charge flows off the capacitor. Calculate the energy dissipated in the lamp.

EASY
IMPORTANT

Given a 5000μF capacitor has a p.d. of 24 V across its plates.Calculate the energy stored on the capacitor.

EASY
IMPORTANT

A 470μF capacitor is connected across the terminals of a battery of e.m.f. 9 V. Calculate the charge on the plates of the capacitor.

EASY
IMPORTANT

A capacitor has a potential difference of 6.0 V across its plates and stores 9.0 mJ of energy. Which row in the table gives the capacitance of the capacitor and the charge on its plates?

  Capacitance / µF Charge / mC
A 500 3.0
B 500 18
C 3000 3.0
D 3000 18

 

EASY
IMPORTANT

A 400μF, capacitor is charged using a 20 V, battery. It is connected across the ends of a 600Ω, resistor with 20 V,potential difference across its plates.

Calculate the time constant for the discharging circuit.