Temperature is not the same as heat
Thermal equilibrium — The state reached when two objects in contact are at the same temperature, so there is no longer any net flow of energy between them.
These two words are used interchangeably in everyday speech and mean quite different things in physics. Temperature is a measure of the average kinetic energy of the particles. Thermal energy, or internal energy, is the total energy of all of them added together.
A cup of tea at 80 °C is hotter than a swimming pool at 25 °C. But the pool holds far more thermal energy, because it contains vastly more particles. Temperature tells you the average; thermal energy depends on the average and on how much substance there is.
Energy always flows from higher temperature to lower temperature, never the other way of its own accord. That flow is what we call heating, and it continues until the two are at the same temperature — thermal equilibrium.
Specific heat capacity
Specific heat capacity — The energy needed to raise the temperature of 1 kg of a substance by 1 °C, measured in J kg⁻¹ °C⁻¹.
Different substances need very different amounts of energy for the same temperature rise. Water needs 4200 J to warm one kilogram by one degree; the same kilogram of copper needs only 385 J. Water is unusually hard to heat.
That high value has real consequences. It is why water is used in central heating systems and car radiators — it carries a great deal of energy for a modest temperature change. It is also why coastal areas have milder weather than inland ones: the sea warms and cools far more slowly than the land.
The word "specific" simply means "per kilogram". Multiply by the mass and the temperature change and you have the energy.
- E
- energy transferredJ
- m
- masskg
- c
- specific heat capacityJ kg⁻¹ °C⁻¹
- Δθ
- temperature change°C
A 2.0 kW kettle contains 0.50 kg of water at 20 °C. Calculate how long it takes to reach 100 °C, assuming no energy is lost.
- Temperature change
Δθ = 100 − 20 = 80 °C.A change, not a final value. E = mcΔθ = 0.50 × 4200 × 80.E = 168 000 J.t = E/P = 168 000 / 2000 = 84 s.Power is energy per second, so dividing gives the time.
84 s, about a minute and a half
Changing state and latent heat
Specific latent heat — The energy needed to change the state of 1 kg of a substance without any change in temperature.
Heat a solid steadily and its temperature climbs — until it starts to melt. Then, remarkably, the temperature stops rising even though energy is still going in. It stays put until every last bit has melted, and only then does it start climbing again.
The energy has not vanished. It is being used to break the forces holding the particles in their fixed positions, not to make them move faster. Since temperature measures average kinetic energy, and the kinetic energy is not changing, the thermometer does not move.
The same happens at the boiling point, and the energy required there is much larger — separating particles completely takes far more work than merely letting them slide past one another. For water, melting takes 334 000 J per kilogram and boiling takes 2 260 000 J per kilogram.
This is why a steam burn is so much worse than a burn from boiling water at the same temperature. The steam must first condense on your skin, releasing all of that latent heat before it even begins to cool.
- E
- energyJ
- m
- masskg
- L
- specific latent heatJ kg⁻¹
The two flat sections are melting and boiling. Energy is still being supplied throughout, but the temperature holds steady because that energy is breaking bonds rather than increasing the particles' speed. Notice how much longer the boiling plateau is.
Thermal expansion
Almost everything expands when heated. The particles vibrate more vigorously, so on average they sit slightly further apart, and the object grows very slightly in every direction.
The effect is small but the forces involved are enormous, so engineers must design for it. Bridges are built with expansion joints, and railway lines with small gaps, so that summer heat does not buckle them. Overhead power lines are hung with a deliberate sag in winter, because they contract and tighten in cold weather.
Gases expand most, liquids less, and solids least — a direct consequence of how strongly the particles are held. A bimetallic strip exploits the difference between two metals: they expand by different amounts, so the strip curls when heated, and that movement can switch a circuit. This is how a simple thermostat works.
Water is the famous exception. Between 0 °C and 4 °C it contracts as it warms, and ice is less dense than the water it forms from. That is why ice floats and why ponds freeze from the top down, leaving fish alive underneath.
Key points
- Temperature is average kinetic energy; thermal energy is the total.
E = mcΔθfor a temperature change;E = mLfor a change of state.- During melting or boiling the temperature stays constant.
- Water has an unusually high specific heat capacity, at 4200 J kg⁻¹ °C⁻¹.
- Solids expand least, gases most, and water behaves oddly below 4 °C.