1. Select the unknown
Choose whether you need heat energy, specific heat, mass, temperature change, or the final temperature.
Calculate heat energy, specific heat capacity, mass, temperature change, or final temperature using the thermodynamic equation q = mcΔT.
Select the value you need to calculate and enter the known measurements.
The calculator converts your measurements into compatible SI units before applying the correct rearrangement of the heat equation.
Choose whether you need heat energy, specific heat, mass, temperature change, or the final temperature.
Add the available measurements and select their units. You can also choose a common material preset.
The tool displays the calculated value, formula, converted measurements, heat direction, and calculation steps.
Specific heat capacity describes how much energy is required to raise the temperature of one unit of mass by one degree.
Specific heat capacity is a physical property that indicates how resistant a material is to temperature change. A substance with a high specific heat capacity needs more energy to heat up than a substance with a low specific heat capacity.
Water has a relatively high specific heat capacity of approximately 4,184 J/kg·K. This means one kilogram of water requires about 4,184 joules of heat energy to increase its temperature by one degree Celsius.
Metals such as copper and iron have lower specific heat values. They generally heat up and cool down more quickly than the same mass of water under similar conditions.
A positive heat value means the material absorbs thermal energy. Its temperature normally rises when there is no phase change.
A negative heat value means the material releases thermal energy. Its temperature normally falls.
The equation assumes the material remains in the same physical state. Melting, boiling, freezing, and condensation require latent heat calculations in addition to sensible heat calculations.
These are approximate values. Actual specific heat can vary with temperature, composition, pressure, and material purity.
| Material | J/kg·K | J/g·°C | General behavior |
|---|---|---|---|
| Water | 4,184 | 4.184 | Heats and cools relatively slowly |
| Ethanol | 2,440 | 2.440 | Moderately high heat capacity |
| Ice | 2,000 | 2.000 | Lower than liquid water |
| Air | 1,005 | 1.005 | Approximate value at constant pressure |
| Aluminum | 900 | 0.900 | Higher than many common metals |
| Glass | 840 | 0.840 | Value varies by glass composition |
| Sand | 710 | 0.710 | Heats faster than water |
| Iron | 449 | 0.449 | Relatively low heat capacity |
| Copper | 385 | 0.385 | Conducts heat efficiently |
| Gold | 129 | 0.129 | Low specific heat capacity |