IB Physics SL Topic B.1 — Heat & Thermal Transfer Paper 1 & 2 Internal Energy ~6 min read

Internal Energy

Supplying thermal energy to a substance doesn’t always make it hotter. To see why, you need to split its internal energy into the two things it’s actually made of.

📘 What you need to know

What Is Internal Energy?

Internal energy is defined as the sum of the total kinetic energy and the total intermolecular potential energy of all the particles within a substance. When thermal energy is transferred to a substance, one of two things can happen — sometimes both at once:

KINETIC ENERGY ↑ Particles move faster — temperature risesPOTENTIAL ENERGY ↑ Particles move apart — temperature stays the same
Internal energy has two components — only a rise in kinetic energy shows up as a rise in temperature

Internal Energy and Temperature

Temperature is a measure of the average kinetic energy of a substance’s particles — nothing else. That means only a change in average kinetic energy produces a change in temperature. A change in potential energy, on its own, leaves the temperature exactly where it was.

Due to thermal expansion, a rising temperature usually does increase potential energy slightly too, since particles spread out a little as they heat up. But when potential energy changes on its own — with kinetic energy held constant — temperature simply doesn’t move. This is exactly what happens during every change of state, such as melting or boiling.

Quick recap: Internal energy = total KE + total PE of the particles. A change in average KE changes temperature. A change in PE alone does not.
WE 1

A sealed container of ice at 0 °C is heated at a constant rate. For the first several minutes, its temperature stays fixed at 0 °C even though energy is being continuously supplied. Explain this in terms of internal energy.

Reasoning The thermal energy supplied is being used to increase the potential energy of the particles, partially overcoming the intermolecular forces holding the solid lattice together, as the ice melts. Why temperature doesn’t change Because the average kinetic energy of the particles isn’t increasing during this process, the temperature stays constant even though internal energy is rising. Energy goes into breaking bonds, not into speeding particles up
WE 2

Two identical blocks of the same metal, both starting as solids, are supplied with equal amounts of thermal energy. Block A stays solid throughout; Block B fully melts during the process. Which block shows the greater rise in temperature, and why?

Reasoning All the energy supplied to Block A goes into increasing the kinetic energy of its particles, since no phase change occurs. Contrast with Block B Some of the energy supplied to Block B is instead used to increase potential energy as it melts, leaving less energy available to raise kinetic energy. Block A shows the greater temperature rise

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⚠ Common mistakes

Up next: Thermal Equilibrium — where we look at what happens when two substances at different temperatures come into contact.

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