The gas laws
Absolute zero — 0 K, or −273.15 °C. The temperature at which particles have the minimum possible energy and the pressure of an ideal gas would fall to zero.
Three experimental relationships describe how a fixed mass of gas behaves, each holding one quantity constant while two others vary.
Boyle's law: at constant temperature, pressure is inversely proportional to volume. Halve the volume and the pressure doubles, because the same particles strike a smaller area more often.
Charles's law: at constant pressure, volume is directly proportional to absolute temperature. Heat a gas and it expands, because the particles move faster and push the walls out until the pressure is back to what it was.
The pressure law: at constant volume, pressure is directly proportional to absolute temperature. This is why an aerosol can bursts in a fire.
The word absolute is essential. These proportionalities only hold in kelvin. Doubling from 20 °C to 40 °C does not double anything; doubling from 293 K to 586 K does.
- p
- pressurePa
- V
- volumem³
- T
- absolute temperatureK
- n
- number of molesmol
- R
- gas constant, 8.31J mol⁻¹ K⁻¹
A sealed cylinder holds gas at 1.0 × 10⁵ Pa and 27 °C in a volume of 0.020 m³. It is compressed to 0.008 m³ and warms to 87 °C. Find the new pressure.
- Convert both temperatures:
27 °C = 300 K,87 °C = 360 K.Do this first, every time. Using Celsius here gives an answer roughly three times too small. - Use
p₁V₁/T₁ = p₂V₂/T₂. (1.0 × 10⁵ × 0.020) / 300 = (p₂ × 0.008) / 360.6.67 = p₂ × 2.22 × 10⁻⁵.p₂ = 3.0 × 10⁵ Pa.Volume down by 2.5 and temperature up by 1.2 — a threefold rise is exactly right.
3.0 × 10⁵ Pa
Kinetic theory: what temperature really is
The gas laws are experimental facts. Kinetic theory explains them, by treating a gas as a very large number of tiny particles in constant random motion.
The model makes a few assumptions: the particles are far apart compared with their own size, they exert no forces on each other except during collisions, all collisions are perfectly elastic, and their motion is random. A real gas at ordinary pressures matches this closely.
Pressure then has a mechanical explanation. Each particle striking a wall exerts a tiny impulse, and the pressure is the total force from all those collisions divided by the wall area. Squeeze the gas and the collisions become more frequent, so the pressure rises — Boyle's law, explained.
Temperature also gets a meaning. The absolute temperature is proportional to the average kinetic energy of the particles. Heat the gas and they move faster, hit harder and more often, and the pressure rises — the pressure law, explained.
This is also why absolute zero is a genuine floor rather than an arbitrary point: it is where the kinetic energy is as low as it can be.
- N
- number of particles
- c̄²
- mean square speedm² s⁻²
- k
- Boltzmann constant, 1.38 × 10⁻²³J K⁻¹
The flat sections are melting and boiling. Energy still flows in but the temperature holds steady, because it is going into separating particles rather than speeding them up — and temperature only measures the speeding up.
The first law of thermodynamics
First law of thermodynamics — The increase in internal energy of a system equals the heat supplied to it plus the work done on it. ΔU = Q + W. It is conservation of energy, applied to heat.
Internal energy is the total energy of all the particles in a system — kinetic and potential. There are exactly two ways to change it: supply heat, or do work.
Both routes are equivalent. Rubbing your hands warms them by doing work; holding them near a fire warms them by heat transfer. The internal energy does not record which method was used.
Signs matter and are where marks are lost. Q is positive when heat goes into the system; W is positive when work is done on the system, which happens when a gas is compressed. A gas that expands does work on its surroundings, so W is negative and the gas cools unless heat is supplied.
That is why a spray can gets cold in use, and why compressing air in a bicycle pump makes the barrel warm.
- ΔU
- change in internal energyJ
- Q
- heat suppliedJ
- W
- work done on the gasJ
An isothermal change is not a change of zero energy
At constant temperature ΔU = 0, so Q = −W. Heat still flows and work is still done — they simply cancel. Writing "nothing happens because the temperature is constant" throws away the whole question.
The second law, and why engines waste energy
The first law says energy is conserved. It does not say which direction things go, and left to itself it would permit a cup of tea to grow hotter while the room cooled. The second law supplies the missing direction: heat flows spontaneously from hot to cold and never the other way.
A consequence is that no heat engine can be perfectly efficient. An engine takes heat from a hot source, converts some to work, and must dump the rest into a cold sink. That waste is not bad engineering — it is required by the law.
The best possible efficiency depends only on the two temperatures, and it is reached only by an ideal reversible engine. A real engine does worse because of friction, turbulence and heat leaking away.
This is why a car engine is around 25-30% efficient and a modern power station around 40%. It is also why raising the temperature of the source is the main way to improve either.
A refrigerator is a heat engine run backwards: work is done on it to move heat from cold to hot, which is exactly what the second law forbids happening on its own. That is why a fridge needs a power supply and why the back of it is warm.
- T_h
- source temperatureK
- T_c
- sink temperatureK
- Q_h
- heat taken from the sourceJ
Key points
- Gas law calculations are in kelvin, always.
- Absolute temperature is proportional to the mean kinetic energy of the particles.
ΔU = Q + W— heat in is positive, work done on the gas is positive.- An expanding gas does work and cools unless heat is supplied.
- No engine can be 100% efficient; the maximum is
1 − T_c/T_h.