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Intermediate

Power

4.1.1.4 Power

Aligned to the AQA 8463 specification

Topic
Energy
Level
Intermediate
Reading time
4 min
Published
2 July 2026
On this page
  1. 1.What Power Measures
  2. 2.The Watt: Energy Transfer per Second
  3. 3.The Two Power Equations
  4. 4.Power from Energy — Worked Examples
  5. 5.Same Energy, Different Power
  6. 6.Common Exam Mistakes

Key takeaways

  • Power is the rate of energy transfer, or the rate of doing work, measured in watts (W).
  • An energy transfer of 1 joule per second equals a power of 1 watt: 1 J/s = 1 W.
  • Power can be calculated with P = E/t or P = W/t; both must be recalled from memory.
  • Two devices can transfer the same amount of energy but have different powers if one does it in less time; the faster transfer means a higher power.

What Power Measures

Two cranes might both lift the same load to the same height, transferring the same amount of energy. If one does it in half the time, it is doing so at a greater rate. That rate is power.

Power is the rate of energy transfer, or the rate of doing work. It is measured in watts (W).

Power tells you how fast energy is being transferred, not how much. A 60 W bulb and a 2000 W kettle both transfer energy electrically, but the kettle does so more than thirty times faster. A more powerful device transfers the same energy in less time.

The word work here means energy transferred by a force moving an object. Doing work at a fast rate and transferring energy at a fast rate are the same thing, which is why power can be defined in either way.

The Watt: Energy Transfer per Second

The watt links power directly to energy and time.

An energy transfer of 1 joule per second (1 J/s) equals a power of 1 watt (1 W).

So a device with a power of 100 W transfers 100 J of energy every second. A 2 kW (2000 W) heater transfers 2000 J each second.

Larger powers are written with prefixes:

PrefixSymbolMeaningExample
kilokW1000 WElectric kettle
megaMW1 000 000 WPower station generator

To convert a power in kilowatts to watts, multiply by 1000. Always work in watts, joules and seconds when substituting into the equations, converting any kilowatts or minutes first.

The Two Power Equations

Power can be calculated from energy transferred or from work done, over the time taken.

In the first, is power in watts (W), is energy transferred in joules (J), and is time in seconds (s). In the second, is work done in joules (J). Since work done is simply energy transferred, the two equations are really the same relationship written with different symbols.

You must recall and apply both and . Neither is given on the equation sheet.

Rearranging gives the energy transferred in a time as , and the time for a transfer as . Being fluent with all three forms saves time in the exam.

Power from Energy — Worked Examples

Worked example 1 — a device transfers 30 000 J of energy in 20 s. Find its power.

Worked example 2 — a 2 kW microwave runs for 30 s. How much energy does it transfer?

First convert the power to watts: . Then rearrange to :

Worked example 3 — a crane does 2000 J of work lifting a load in 8 s. Find its power.

Convert kilowatts to watts and minutes to seconds before substituting. A power in kW or a time in minutes left unconverted is a common source of wrong answers.

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Same Energy, Different Power

The specification asks you to explain, with an example, that the same energy transfer at a faster rate means a greater power. Two motors lifting the same weight the same height make this concrete.

Both motors lift a load, doing the same work against gravity. Suppose each raises a 200 N weight through 5 m, so each does:

Motor A takes 10 s:

Motor B takes 5 s:

Motor B transfers the same 1000 J but in half the time, so its power is twice as large. This is the key idea: power depends on the rate of transfer, not just the total energy.

Common Exam Mistakes

1. Confusing energy and power

Energy (joules) is the total transferred; power (watts) is how fast it is transferred. Read the question to see which is asked for, and check your unit matches.

2. Not converting kilowatts to watts

A 2 kW device is 2000 W. Substituting 2 instead of 2000 gives an answer a thousand times too small.

3. Leaving time in minutes

Time in must be in seconds. Multiply minutes by 60 first: 3 minutes is 180 s.

4. Thinking the equations are given

and must both be recalled from memory. They are not printed on the equation sheet.

5. Assuming more energy means more power

A device can transfer a large amount of energy at a low power if it takes a long time. Power compares energy against time, so always divide by the time taken.

Key terms

Power
The rate of energy transfer, or the rate of doing work, measured in watts (W).
Watt (W)
The unit of power; one watt is an energy transfer of one joule per second (1 J/s).
Work done
The energy transferred when a force moves an object through a distance, measured in joules.

Frequently asked questions

Power is the rate of energy transfer, or the rate of doing work. It is measured in watts (W), where 1 watt equals 1 joule of energy transferred per second.

Divide the energy transferred (or work done) by the time taken: P = E/t or P = W/t. For 30 000 J transferred in 20 s, P = 30 000 ÷ 20 = 1500 W. Both equations must be recalled.

Energy, in joules, is the total amount transferred. Power, in watts, is how fast that energy is transferred. A powerful device transfers the same energy in less time than a less powerful one.

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