| Watt-hours (Wh) | Millijoules (mJ) |
|---|---|
| 1 Watt-hour | 3600000 mJ |
| 2 Watt-hours | 7200000 mJ |
| 3 Watt-hours | 10800000 mJ |
| 4 Watt-hours | 14400000 mJ |
| 5 Watt-hours | 18000000 mJ |
| 10 Watt-hours | 36000000 mJ |
| 20 Watt-hours | 72000000 mJ |
| 25 Watt-hours | 90000000 mJ |
| 50 Watt-hours | 180000000 mJ |
| 100 Watt-hours | 360000000 mJ |
| Reference | Watt-hours (Wh) | Millijoules (mJ) |
|---|---|---|
| One food calorie (kcal) | 1.16222 Wh | 4184000 mJ |
| An AA alkaline battery | 2.77778 Wh | 10000000 mJ |
| Daily adult food intake | 2324.44 Wh | 8.368 × 109 mJ |
| One unit on an electricity bill | 1000 Wh | 3.6 × 109 mJ |
| A lightning strike | 277778 Wh | 1 × 1012 mJ |
The watt-hour is a unit of energy equal to the energy delivered by one watt of power flowing for one hour, or exactly 3600 joules. Its symbol is Wh. It is the small change of the kilowatt-hour, used wherever quantities of energy are too modest to state in thousands.
Batteries are its main territory. The capacity of a laptop, phone, power tool or portable speaker is quoted in watt-hours, and this is the figure that matters when comparing devices, because it combines the two numbers usually printed on a cell. A battery marked 3000 milliampere-hours at 3.7 volts stores about 11 watt-hours, and the ampere-hour figure alone is meaningless without the voltage.
Aviation regulation has made the unit unexpectedly public. Lithium batteries above 100 watt-hours may not be carried in aircraft cabin baggage without airline approval, and above 160 watt-hours they are banned from passenger aircraft entirely. This is why laptop and camera batteries carry the figure printed on them, and why portable power banks are designed to sit just under the threshold.
Small-scale energy generation uses it as well. A solar panel on a garden light, an energy-harvesting sensor or a bicycle dynamo produces watt-hours per day rather than kilowatt-hours, and low-power electronics designed to run for years on a single cell are budgeted in milliwatt-hours.
The unit shares the criticism levelled at the kilowatt-hour: it combines a coherent SI unit of power with a non-SI unit of time. In strictly SI terms the correct expression is 3600 joules, or 3.6 kilojoules, and scientific writing uses joules. Everywhere else the practical link to a device's power rating wins.
Energy storage systems, from a home battery to a grid installation, scale upward through kilowatt-hours and megawatt-hours from the same starting point, so the whole family shares one arithmetic.
A common confusion is worth clearing up here. Battery cells are usually labelled in ampere-hours or milliampere-hours, which measure charge and not energy, and two cells with the same ampere-hour rating store quite different amounts if their voltages differ. Multiplying ampere-hours by the nominal voltage gives watt-hours: a 3000-milliampere-hour phone cell at 3.85 volts holds about 11.6 watt-hours. That is why capacity comparisons between devices are only meaningful in watt-hours, why airlines set their limits in watt-hours, and why a power bank advertised in milliampere-hours may deliver less than its number suggests once its own conversion losses are counted.
One watt-hour equals 3600 joules, 0.001 kilowatt-hours, or about 0.86 kilocalories.
The millijoule is a unit of energy equal to one thousandth of a joule, or 0.001 joules. Its symbol is mJ. It is the first unit on the way down from the joule at which the human body stops being able to feel what is happening, and for that reason it appears wherever a small amount of energy has to be released deliberately and precisely.
Everyday mechanics reaches it easily. A paperclip weighing a gram, dropped from a metre, arrives with about ten millijoules. Pressing a keyboard key takes a couple, turning a page rather less, and the spark that jumps from a doorknob on a dry day carries between one and ten. That last figure is roughly where the threshold of sensation lies, which makes the millijoule the smallest energy a person routinely notices without being told.
Explosion protection is written here. The minimum ignition energy of methane in air is about 0.28 millijoules and of propane about 0.25, while clouds of flour, sugar or metal dust need tens of millijoules. Standards for hazardous areas set the permitted stored energy of a circuit against those numbers, so the whole framework of intrinsic safety turns on quantities in this range rather than on anything a voltmeter shows.
Medical and industrial lasers are rated in millijoules per pulse. A Q-switched laser used for tattoo removal or lithotripsy delivers a few hundred millijoules in a few nanoseconds, and the extreme brevity is what converts a modest energy into a peak power of megawatts. Ophthalmic capsulotomy uses a few millijoules, and dermatological devices are titrated in the same unit because the dose per pulse, not the session, determines the effect on tissue.
Small electrical and acoustic quantities land here too. A one-milliwatt laser pointer emits one millijoule every second. A person speaking loudly radiates roughly a millijoule of sound each second, and a smoke alarm sounder several. A capacitor of one microfarad charged to fifty volts stores 1.25 millijoules, which is the sort of figure printed on flash circuits, ignition modules and camera shutters.
Above it the joule takes over and effects become obviously mechanical; below it the microjoule takes over and effects become invisible. That makes the millijoule the practical boundary of perception, and explains why safety limits, sensitivity thresholds and dose specifications so often stop at three decimal places rather than going further.
One millijoule equals 0.001 joules, about 0.000239 calories, or about 0.000000278 watt-hours.