IB Physics SL Topic B.1 — Heat & Thermal Transfer Paper 1 & 2 Thermal Conduction ~8 min read

Thermal Conduction

Touch a metal spoon left in a hot pan and you’ll feel it almost instantly — touch the wooden handle next to it and you won’t. Conduction is why solids transfer heat so differently depending on what they’re made of.

📘 What you need to know

Three Ways Thermal Energy Moves

Thermal energy can transfer from a hotter region to a cooler one through three different mechanisms: conduction, convection and radiation. This page focuses on conduction — the dominant mechanism in solids — with convection and radiation covered in their own pages.

How Conduction Works

When two solids of different temperature touch, thermal energy transfers from the hotter one to the cooler one until they reach thermal equilibrium. This happens through two mechanisms working together:

HOT COLD Vibrations shrink and free electrons (orange) carry energy from hot to cold
Larger vibrations near the hot end pass energy along through collisions, while free electrons speed the process up further

Thermal Conductivity

Thermal conductivity, k, quantifies how effectively a material transfers heat by conduction. It’s measured in W m⁻¹ K⁻¹. Materials with a high thermal conductivity — usually those with plenty of free electrons — are excellent conductors; materials with a low thermal conductivity are good thermal insulators.

Air 0.024 W/(m K)Wood 0.15 W/(m K)Glass 1.0 W/(m K)Steel 50 W/(m K)Copper 400
Metals like copper conduct heat far more effectively than insulators like wood or trapped air — bar widths here aren’t fully to scale, since copper’s conductivity is thousands of times greater than air’s

The Temperature Gradient Equation

Whenever a temperature difference exists across a material, thermal energy flows from the hotter side to the cooler side. This is called a temperature gradient, and the rate of that heat flow can be calculated directly.

Rate of heat transfer by conduction ΔQ⁄Δt = kAΔT⁄Δx

Where ΔQ⁄Δt is the flow of thermal energy per second in watts, k is thermal conductivity, A is the cross-sectional area in m², ΔT is the temperature difference, and Δx is the thickness of the material in metres. Provided the cross-sectional area stays constant, this flow of energy per second is uniform throughout — much like current staying constant around a series circuit, even though different components have different resistances.

🧭 Recipe: Finding the Junction Temperature in a Composite Bar

  1. Recognise that the rate of heat flow is the same through every section of the bar in steady state
  2. Write kΔT = constant for each section, since A and Δx are shared across sections of equal length and cross-section
  3. Substitute the known conductivities and end temperatures to form an equation in the unknown junction temperature
  4. Solve for the junction temperature
Quick recap: ΔQ/Δt = kAΔT/Δx. Higher k means faster heat flow for the same area, temperature difference and thickness.
WE 1

A copper heat-exchanger plate (k = 400 W m⁻¹ K⁻¹) has a cross-sectional area of 0.020 m² and a thickness of 5.0 mm. One face is held at 85 °C and the other at 20 °C. Calculate the rate of heat transfer through the plate.

Step 1 — List the known quantities k = 400 W m⁻¹ K⁻¹, A = 0.020 m², ΔT = 85 − 20 = 65 K, Δx = 5.0 × 10⁻³ m Step 2 — Substitute into the equation ΔQ/Δt = kAΔT/Δx = (400 × 0.020 × 65) ÷ (5.0 × 10⁻³) = 104 000 W ≈ 104 kW
WE 2

A composite bar is made of a 20 cm length of brass (k = 110 W m⁻¹ K⁻¹) joined to a 20 cm length of glass (k = 1.0 W m⁻¹ K⁻¹), both with identical cross-section, insulated along their sides. The brass end is held at 80 °C and the glass end at 10 °C. Determine the temperature at the brass–glass junction.

Step 1 — Set the rate of heat flow equal in both sections k_brass(80 − T) = k_glass(T − 10) Step 2 — Substitute the known values 110(80 − T) = 1.0(T − 10) Step 3 — Expand and solve for T 8800 − 110T = T − 10 → 8810 = 111T T ≈ 79.4 °C Because glass is such a poor conductor compared to brass, almost the entire temperature drop happens across the glass section.

💡 Top tips

⚠ Common mistakes

Up next: Thermal Convection — where we look at how heat moves through liquids and gases instead.

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