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AQA GCSE PHYSICS · PAPER 1 · FOUNDATION & HIGHER

Specific latent heat

Particle model of matter · Lesson 4 of 6

Warm-up

Answer each one, then check.

1. What happens to temperature during melting?

It stays constant

2. What is the unit of energy?

Joule

3. What is the equation for a temperature change?

ΔE = mcΔθ

4. Name the change from liquid to gas.

Boiling / evaporating

5. What is internal energy?

Total kinetic and potential energy of the particles

Learning Objectives

1. Define specific latent heat and distinguish fusion from vaporisation.

2. Apply E = mL.

3. Interpret heating and cooling graphs that include changes of state.

4. Distinguish specific heat capacity from specific latent heat.

Specific Latent Heat

The specific latent heat of a substance is the energy needed to change the state of 1 kg of the substance with no change in temperature.

E = mL is given on the equation sheet. Specific latent heat of fusion: solid to liquid. Specific latent heat of vaporisation: liquid to gas. L is in J/kg.

A Heating Curve

Flat sections show a change of state.

A temperature-time graph for ice heated to steam, with flat sections at 0 and 100 degrees Celsius where the state changes.

Two Different Ideas

SPECIFIC HEAT CAPACITY

SPECIFIC LATENT HEAT

▸ Energy to raise the temperature of 1 kg by 1 °C.

▸ The temperature changes.

▸ ΔE = mcΔθ; J/kg °C.

▸ Energy to change the state of 1 kg with no temperature change.

▸ The temperature stays the same.

▸ E = mL; J/kg.

Melting Ice

Calculate the energy needed to melt 0.20 kg of ice at 0 °C. Specific latent heat of fusion of water = 334 000 J/kg.

 

1. Write the equation

E = mL

2. Substitute

E = 0.20 × 334 000

3. Answer

E = 66 800 J

Answer: 66 800 J

Boiling Water

Calculate the energy to change 0.50 kg of water at 100 °C into steam. Specific latent heat of vaporisation = 2 260 000 J/kg.

 

1. Substitute

E = 0.50 × 2 260 000

2. Answer

E = 1 130 000 J

Answer: 1 130 000 J (1.13 MJ)

Reading the Graph

Explain why the temperature stays constant during section B of the heating curve.

 

1. Energy is still supplied

The particles are gaining energy

2. Where it goes

It increases the potential energy of the particles as the bonds are broken

3. So

The average kinetic energy, and the temperature, stay the same

Answer: The energy supplied breaks the bonds (changing potential energy) so the temperature does not rise.

Why Steam Burns More

A favourite exam idea.

▸ Condensing. Steam at 100 °C condenses to water at 100 °C and releases a lot of latent heat.

▸ Then. The water then cools and releases more energy.

▸ So. Steam transfers more energy to skin than boiling water at the same temperature.

Key Terms

Specific latent heat

Energy to change the state of 1 kg with no temperature change.

Latent heat of fusion

For solid to liquid.

Latent heat of vaporisation

For liquid to gas.

Heating curve

A temperature-time graph for a heated substance.

Constant temperature

Temperature that does not change during a change of state.

Potential energy

Energy stored due to the forces between particles.

Your Task: Read the Curve

12 minutes

On a heating curve for water there are flat sections at 0 °C and 100 °C. Explain what is happening in each and why the second is longer.

1. Name each change.

2. Compare the latent heats.

A good answer shows: At 0 °C the ice is melting; at 100 °C the water is boiling. The boiling section is longer because the latent heat of vaporisation is much greater than the latent heat of fusion.

Can I...?

☐ State what specific latent heat is.

☐ Distinguish fusion from vaporisation.

☐ Use E = mL.

☐ Read a heating curve.

☐ Explain flat sections.

☐ Distinguish c from L.

☐ Explain steam burns.

☐ Give units of L.

Summary

✓ E = mL.

✓ Temperature is constant during a change of state.

✓ Heating curves have flat sections at melting and boiling points.

✓ Distinguish c and L.

 

EXAM FOCUS

Calculate the energy needed to melt 0.35 kg of ice at 0 °C. Specific latent heat of fusion = 334 000 J/kg. (2 marks)

Multiply mass by L.