Ideal Gas & Thermodynamic Processes Explorer
Compare state changes, p-V graphs, and thermal processes so gas-law shortcuts, work, and internal-energy reasoning stay aligned.
Learning goals
- Use thermodynamic temperature and convert between Celsius and kelvin.
- Use ideal-gas equations with particles, moles and SI units.
- Apply the kinetic model to gas pressure and mean translational kinetic energy.
- Derive pV = ⅓Nm⟨c²⟩ from the definition of pressure and a one-dimensional model of molecular collisions extended to three dimensions.
- Relate microscopic energy, internal energy and thermal equilibrium.
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Change one variable at a time and watch the model respond.
Gas setup
State change controls
Practice run
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Observation logCompare what changed0 saved
Change one variable, save another reading, then compare the evidence.
Scroll sideways to compare readings.
Fair-test check
Study lensUse pV = nRT and special gas-law relationships only after checking what stays constant.
Try this
Ask what is constant first, then decide whether the cleaner route is a named gas-law shortcut or the full ideal-gas relation.
Learn to
- Use pV = nRT and special gas-law relationships only after checking what stays constant.
- Read p-V processes and connect work done by a gas to area under the graph.
- Apply ΔU = Q − W consistently, including zero-work and zero-change cases.
Exam transfer
Governing idea
An ideal gas obeys pV = nRT and ΔU = Q − W, where W is work done by the gas. Isothermal, isochoric, isobaric, and adiabatic paths impose different constraints.
Model boundary
States are equilibrium states of a calorically perfect diatomic ideal gas with γ = 1.40 and constant heat capacities. Processes are quasi-static; phase changes and intermolecular forces are omitted.
Avoid this trap
Isothermal means ΔU = 0 for an ideal gas, not Q = 0. Adiabatic means Q = 0, while an isochoric process has W = 0. At zero state change, W, ΔU, and Q are all zero.
How to explore
Read state changes, p-V graphs, and process comparisons without mixing up constants, work, and internal-energy ideas.
Predict the outcome, change one variable at a time, then interpret the result. Completion records participation only and does not award mastery.
About this activity
Compare state changes, p-V graphs, and thermal processes so gas-law shortcuts, work, and internal-energy reasoning stay aligned. A text explanation and no-JavaScript route remain available.
How this activity affects progress
Course and syllabus information
- Course
- GCE A-Level H2 Physics
- Edition
- GCE A-Level H2 Physics 2027