4.10.3

Energy Stored by a Capacitor

Test yourself

Energy of a Capacitor - QV Graphs

The work done on a charge (Q) in moving through a potential difference of ΔV is equal to QΔV. This helps to find the energy stored by a capacitor.

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Transporting charge

  • Imagine a parallel plate capacitor that has a potential difference of V. The definition of capacitance says that Q = CV.
  • By transporting a tiny amount of charge, ΔQ, from the negative plate to the positive plate, the potential difference is approximately constant.
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Area under graph

  • The increase in energy stored is equal to the energy gained by the charge, i.e. VΔQ. This is equal to the area shaded on the graph.
  • This means that the total energy stored will equal the area of the triangle: ½QV.

Capacitor Equations

Capacitors are easy to handle if you know what equation to use.

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Capacitance

  • Definition of capacitance:
    • C=QVC=\frac{Q}{V}
  • Capacitance of a parallel plate:
    • C=Aϵ0ϵr/dC=A{{\epsilon}_0}{{\epsilon}_r}/d
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Energy

  • The energy stored in a capacitor is:
    • E=12QVE=\frac{1}{2}QV
  • By using the definition of capacitance, you can rearrange to get:
    • E=12CV2E=\frac{1}{2}CV^2
    • E=12Q2CE=\frac{1}{2}\frac{Q^2}{C}

Jump to other topics

1Space, Time & Motion

2The Particulate Nature of Matter

3Wave Behaviour

4Fields

4.1Circular Motion

4.2Newton's Law of Gravitation

4.3Fields

4.4Fields at Work

4.5Electric Fields

4.6Magnetic Effect of Electric Currents

4.7Heating Effect of Currents

4.8Electromagnetic Induction

4.9Power Generation & Transmission

4.10Capacitance

5Nuclear & Quantum Physics

6Measurements

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