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c059741
NotesPhysicsTopic 2.1Conduction, convection and radiation
Back to Physics Topics
2.1.42 min read

Conduction, convection and radiation

IB Physics • Unit 2

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Contents

  • Three ways heat moves
  • The rate of conduction
  • Exam-style question
The big idea: Wrap your hands round a hot mug and they warm up; steam rises off the top; and you feel a fire's glow from across the room. That's thermal energy on the move — always from a hotter place to a colder one.

It can travel in three ways: conduction, convection and radiation.

They differ in what actually moves — and whether any material is needed at all.
MechanismWhat movesNeeds a material?Everyday example
Conductionenergy passes along, particles stay putYes — best in solids (esp. metals)a metal spoon's handle getting hot
Convectionthe hot fluid itself rises and circulatesYes — only in fluids (liquids/gases)warm air rising off a radiator
Radiationinfrared waves (no particles needed)No — even works through a vacuumthe Sun's heat reaching Earth
Spot the difference: Conduction = energy passed particle-to-particle (the particles stay put).

Convection = the hot fluid itself moves and carries the energy.

Radiation = infrared waves — the only one that crosses empty space (a vacuum).

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In a solid, faster-vibrating hot particles jostle their cooler neighbours, passing energy along. In a metal, free-moving electrons carry it too — which is why metals conduct so well.

The data booklet gives an equation for how fast heat flows by conduction through a flat slab:

Thermal conduction — given in the data booklet. Rate of heat flow = conductivity x area x (temperature difference / thickness).
rate of heat flow — energy transferred each second (W, i.e. J s⁻¹)
thermal conductivity of the material (W m⁻¹ K⁻¹)
cross-sectional area the heat flows through (m²)
temperature difference across the slab (K, or °C — a difference is the same in both)
thickness of the slab (m)
What makes conduction faster?: Bigger k, bigger area A, or a bigger temperature difference ΔT → faster heat flow.

A thicker slab (bigger Δx) → slower heat flow. Δx is on the bottom, so rate ∝ 1 ÷ thickness.
IB-style questionCalculate[3 marks]

A glass window has area 2.0 m², thickness 4.0 × 10⁻³ m, and thermal conductivity k = 0.80 W m⁻¹ K⁻¹. Inside is 21 °C, outside is 5 °C. Find the rate at which heat conducts through it.

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How this is tested — heat transfer shows up on both papers:

Paper 1A / short answer

  • Describe the conduction mechanism.
  • Or outline why a cooling graph's gradient flattens.

Paper 2

  • Estimate the rate of heat flow through a wall, ice layer or window with ΔQ/Δt = kA·ΔT/Δx — and state the unit (W).
The classic trap: Explain how the rate changes as a layer gets thicker — Δx is on the bottom, so the rate falls (rate ∝ 1 ÷ thickness).
Thicker layer ⇒ slower conduction: In ΔQ/Δt = kA·ΔT/Δx, the thickness Δx is in the denominator.

So if everything else stays the same, doubling the thickness halves the rate of heat flow: rate ∝ 1 ÷ Δx.
IB-style questionDetermine[4 marks]

A frozen lake loses heat by conduction up through its ice. The ice has conductivity k = 2.2 W m⁻¹ K⁻¹. The water below is at 0 °C and the top of the ice is at −10 °C. When the ice is 5.0 × 10⁻² m thick, find the rate of heat loss per square metre (take A = 1.0 m²), then state what happens to this rate as the ice gets thicker.

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the one method of thermal energy transfer that can carry energy across a vacuum, and what physically travels in that process. [2 marks]

Related Physics Topics

Continue learning with these related topics from the same unit:

2.1.1Internal energy and the particle model
2.1.2Specific heat capacity
2.1.3Latent heat and calorimetry
2.2.1Solar radiation, intensity and the solar constant
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