Physic Labs

Thermal physics

Melting, vaporization, condensation

Explore the heating curve of water: on sloped segments temperature rises as Q=mcΔTQ=mc\Delta T, while at melting and boiling the temperature stays flat because energy goes to the phase change Q=mLQ=mL. Vary supplied energy and mass to measure the plateau lengths.

Middle school

Equipment

  • Virtual ice–water–steam container with a temperature–energy graph
  • Supplied-energy slider (0–100%)
  • Water-mass slider (100–1000 g)
  • Readout of the current heating stage

Procedure

  1. Identify the curve segments

    Drag the energy slider from 0 and read the stage readout: first 'warming ice', then the flat 'melting near 0 °C' plateau, then 'warming liquid water', the flat 'boiling near 100 °C' plateau, finally 'heating steam'. Note the boundary positions of each segment.

  2. Verify the phase-change plateaus

    Stop the slider mid-melting: energy keeps rising but temperature holds at 0 °C — the latent heat of fusion Q=mLfQ=mL_f breaks crystal bonds instead of raising molecular kinetic energy. Likewise at 100 °C the vaporization plateau is much longer because Q=mLvQ=mL_v is larger.

  3. Change the mass and predict

    Raise the mass from 500 g to 1000 g and watch the curve: every segment doubles in length since both mcΔTmc\Delta T and mLmL scale with mass. Predict the energy needed to boil away 300 g of water and check on the graph.

Simulation

Experiment history

Joseph Black, teaching at Glasgow in the 1760s, noticed that melting ice absorbs heat without warming — he called it 'latent heat' and distinguished it from 'sensible heat' that moves a thermometer. This distinction helped James Watt improve the steam engine with a separate condenser. Phase change was later placed in thermodynamics: the plateau on a heating curve reflects entropy growing as S=Q/TS=Q/T at constant temperature. Today the measured latent heats of water are ~334 kJ/kg for fusion and ~2260 kJ/kg for vaporization at 1 atm — exactly the ratio of the two plateau lengths.

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