The kilogram is the base unit of mass in the International System of Units. Its symbol is kg. It is the only base unit whose name carries a prefix, an inheritance from the early metric system that has never been tidied away.
For more than a century the kilogram was defined by a single object: a cylinder of platinum-iridium held at the International Bureau of Weights and Measures at Sèvres, near Paris. Forty official copies were distributed to member states and compared with the prototype at long intervals. Those comparisons revealed a slow drift of several tens of micrograms between the prototype and its copies over a hundred years, and there was no way to tell which had changed. A unit that could only be defined by an object no one could check was an embarrassment for a system built on reproducibility.
The redefinition took effect on 20 May 2019. The kilogram is now fixed by assigning an exact value to the Planck constant, 6.62607015 times ten to the power minus thirty-four joule seconds, which ties mass to time and length through quantum mechanics. In practice the realisation is made with a Kibble balance, which weighs a mass against an electromagnetic force whose magnitude is known in terms of electrical quantities, or by counting the atoms in an almost perfect silicon sphere. Any properly equipped laboratory can now realise the unit for itself.
Everyday life is unaffected by any of this. Body weight, groceries, luggage allowances, freight and the mass side of nearly every engineering calculation are all in kilograms, and the international prototype still sits in its vault as a historical object rather than a definition.
Realising the new definition takes an instrument rather than an artefact. A Kibble balance holds a mass against an electromagnetic force whose value is known from the Planck constant, comparing mechanical and electrical power directly, and a second method counts the atoms in an almost perfect sphere of silicon-28 whose diameter and lattice spacing are known to a few parts in a billion. The two approaches agree to within about twenty micrograms in a kilogram, and any laboratory that builds one can now make its own primary standard. That is the practical gain of the change: mass no longer has to be traced back to a single cylinder in a vault, and no accident to that cylinder can alter the unit.
One kilogram equals 1000 grams, approximately 2.20462 pounds, or about 35.274 ounces.
| Unit | Symbol | 1 Kilogram equals | 1 of these equals | Converter |
|---|---|---|---|---|
| Nanogram | ng | 1000000000000 ng | 1 × 10-12 kg | Kilograms to Nanograms |
| Microgram | μg | 1000000000 μg | 0.000000001 kg | Kilograms to Micrograms |
| Milligram | mg | 1000000 mg | 0.000001 kg | Kilograms to Milligrams |
| Gram | g | 1000 g | 0.001 kg | Kilograms to Grams |
| Tonne | t | 0.001 t | 1000 kg | Kilograms to Tonnes |
| Grain | gr | 15432.3583529 gr | 0.00006479891 kg | Kilograms to Grains |
| Dram | dr | 564.383391193 dr | 0.00177184519531 kg | Kilograms to Drams |
| Ounce | oz | 35.2739619496 oz | 0.028349523125 kg | Kilograms to Ounces |
| Pound | lb | 2.20462262185 lb | 0.45359237 kg | Kilograms to Pounds |
| Stone | st | 0.157473044418 st | 6.35029318 kg | Kilograms to Stones |
| Hundredweight | cwt | 0.0196841305522 cwt | 50.80234544 kg | Kilograms to Hundredweights |
| Long ton | t | 0.000984206527611 t | 1016.0469088 kg | Kilograms to Long tons |