Energy Stored in a Capacitor (Cambridge (CIE) A Level Physics): Exam Questions

Exam code: 9702

1 hour7 questions
1a
3 marks

A capacitor stores electric charge and electric potential energy.  

7-6-s-q--q3a-easy-aqa-a-level-physics

Fig. 1.1

Sketch a graph labelling both axes on Fig. 1.1, to show how the charge stored, Q by a capacitor varies with the potential difference, V

1b
1 mark

State the feature of the graph in Fig. 1.1 from part (a) that represents the electric potential energy stored by the capacitor.

1c
2 marks

Calculate the energy stored by a capacitor of capacitance 1200 μF that is charged to a potential difference of 4.5 V. 

1d
4 marks

A healthy debate between two physics students concerns the equations for the energy stored by a capacitor. 

A transcript of the debate is given below: 

Student A: “The energy stored E by a capacitor is proportional to the potential difference V, because E = 12QV.” 

Student B: “Actually, the energy stored E by a capacitor is proportional to the square of the potential difference, V2, because E =12CV2.” 

State and explain whether Student A or Student B is correct regarding the energy stored by a capacitor.

The equation for capacitance is: CQV

2a
3 marks

A defibrillator device sends an impulse of electrical energy to maintain a regular heartbeat in a person. The device is powered by a d.c. supply of 4000 V that charges a capacitor of capacitance 10 × 10−6 F. The switch is closed at point A as shown in Fig. 1.1.  

19-2-e-q2a-sq-cie-ial-physics

Fig. 1.1

Calculate the maximum energy stored in the capacitor.

2b
2 marks

Calculate the maximum charge, Q stored in the capacitor.

2c
3 marks

Show, without substituting values into the equation E = 12CV2, the energy stored in the capacitor is 20 J when the potential difference is halved. 

2d
1 mark

The switch is moved to position B. 

State what happens to the energy stored in the capacitor when the switch is moved to position B.

1a
3 marks

Fig 1.1 shows the discharge of a capacitor in a heart pacemaker. 

7-6-s-q--q5a--medium-aqa-a-level-physics

Fig 1.1

Explain how the rate of change of potential difference changes as the capacitor discharges.

1b
3 marks

The capacitor has a capacitance of 140 μF. 

Calculate the energy lost by the capacitor whilst it discharges during the first 30 ms.

Give your answer as a percentage of the initial energy.

1c
2 marks

The charge which is lost as the capacitor discharges is used by the pacemaker to produce a single pulse for the heart. 

Calculate the charge, in μC, of a single pulse.

1d
3 marks

The pacemaker has been designed to operate for a minimum of 3 years, delivering 60 constant pulses per minute. 

Calculate the minimum charge of the power supply if it is to operate over the 3 years. 

Give your answer in Amp-hours.

2a
3 marks

Fig 1.1 shows how the potential difference across a capacitor varies with the charge stored in it.

7-6-mcq-q1-medium-aqa-a-level-physics

Fig 1.1

Calculate the energy stored when the charge on the capacitor is 8.0 µC.

2b
2 marks

Show that the capacitance of the capacitor is 2.0 µF.

2c
3 marks

Calculate the increase in energy stored in the capacitor as the charge increases from 8.0 µC to 10.0 µC.

2d
1 mark

State the change in energy stored if the capacitor is replaced with one with a higher capacitance.

3a
3 marks

Calculate the change in energy stored in a capacitor of capacitance 20 nF when the potential difference between the plates increases from 75 V to 90 V.

3b
3 marks

Calculate the change in charge on the capacitor.

3c
2 marks

A different capacitor has the following change in potential difference against charge stored graph shown in Fig 1.2.

19-2-m-q3c-sq-cie-ial-physics

Fig 1.2

Calculate the capacitance of this capacitor.

3d
2 marks

Show that the energy stored in the capacitor is 0.9 mJ.

1a
2 marks

Fig. 1.1 shows an experiment carried out to measure the speed of a steel ball when it has been dropped from rest.

7-6-s-q--q1a-hard-aqa-a-level-physics

Fig. 1.1

When the ball is touching the copper contacts, the 85 µF capacitor charges to a potential difference of 4.8 V. When the ball is released, it falls and leaves the copper contacts thus causing the capacitor to discharge through the 2.4 kΩ resistor. 

Once the ball has fallen a distance of 0.45 m it splits the thin metal rod causing a break in the circuit and the capacitor stops discharging. 

Fig. 1.2 shows how the potential difference across the resistor varies during the experiment.

7-6-s-q--q1a-fig-2-hard-aqa-a-level-physics

Fig. 1.2

Discuss the significance of the times T1 and T2.

1b
3 marks

Calculate the average current that flows through the resistor as the capacitor discharges. 

You may ignore air resistance.

1c
2 marks

Use Fig. 1.2 to calculate the largest possible value for current in the resistor.

1d
3 marks

Calculate the amount of energy transferred through the 2.4 kΩ resistor during the discharging of the capacitor.

2a
2 marks

Dennis is an electrical engineer and wants to investigate how capacitors store and release charge and energy. 

He firstly designs a circuit to determine the capacitance C of a capacitor. This circuit is shown in Fig. 1.1. The switch S is held in position A until the capacitor is fully charged to 6 V and is then moved to position B so that it fully discharges through the microammeter and the variable resistor R.

7-6-s-q--3a-hard-aqa-a-level-physics

Fig. 1.1

While discharging, Dennis continuously adjusts the variable resistor R to keep the current constant until the capacitor is fully discharged. Fig. 1.2 shows how the current varies during the discharging process. 

7-6-s-q--3a-fig-2-hard-aqa-a-level-physics

Fig. 1.2

Calculate the capacitance of the capacitor.

2b
2 marks

Dennis understands that as the capacitor charges, the energy stored in the capacitor increases, as does the potential difference across it.

7-6-s-q--q3b-fig-1-hard-aqa-a-level-physics

Fig. 1.3

 On the axes provided in Fig. 1.3, sketch a graph of how energy stored in the capacitor varies with potential difference. 

2c
4 marks

Dennis disconnects the circuit and increases the e.m.f. of the power supply by 50%. 

He states that by doing this, the charge stored in the capacitor will increase by 50% and the energy stored in the capacitor will increase by 125%. 

Justify Dennis’s statement with suitable calculations.