- Density of the substance
- 789kg/m³
- Density of the reference
- 1000kg/m³
0.7890
Open with these values0.7890× water
Result: 0.7890 × waterSpecific gravity is one density divided by another, so it has no units: ethanol at 789 kg/m³ against water at 1000 gives 0.789. Below 1 the substance floats in water, above 1 it sinks. It is not the same as specific weight, which is a force per cubic metre and does depend on gravity.
0.7890
Open with these values0.9167
Open with these values13.5340
Open with these valuesSG = ρ substance ÷ ρ reference
| Substance, reference | Substance | Specific gravity |
|---|---|---|
| 789, 1000 | Ethanol — floats | 0.789 |
| 916.7, 1000 | Ice — floats, just | 0.9167 |
| 1000, 1000 | Water against itself | 1 |
| 2700, 1000 | Aluminium — sinks | 2.7 |
| 13534, 1000 | Mercury — sinks | 13.534 |
| 19300, 1000 | Gold — sinks | 19.3 |
Divide the density of your substance by the density of a reference substance. For liquids and solids the reference is water at 4 °C, 1000 kg/m³. Ethanol at 789 kg/m³ therefore has a specific gravity of 0.789.
Specific gravity, also called relative density, is the ratio of a substance's density to the density of a reference substance. It is dimensionless, because it divides one density by another. It tells you how heavy a material is compared with water.
Above 1 the substance is denser than water and sinks in it; below 1 it is less dense and floats. Ice at 0.9167 floats, ethanol at 0.789 floats, and mercury at 13.534 sinks.
Density is mass per unit volume and carries units such as kg/m³, while specific gravity is a ratio of two densities and has none. Because it compares against a known reference, the number is the same whether you measure in kg/m³ or g/cm³.
For liquids and solids use water at 4 °C, 1000 kg/m³, where water reaches its maximum density. For gases, air at standard conditions is normally used instead. Always state the reference, since the same substance gives a different figure against a different one.
Information, not professional advice.
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