Learning objective
B.1.1—Molecular states
• Describe solids, liquids and gases using molecular theory.
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Course review
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Learning objective
• Describe solids, liquids and gases using molecular theory.
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Learning objective
• Density: ρ=m/V.
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Learning objective
• Use Kelvin and Celsius temperature scales.
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Learning objective
• Temperature change has the same size in Kelvin and Celsius.
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Learning objective
• Kelvin temperature measures average particle kinetic energy: Ek=3/2 kBT.
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Learning objective
• Internal energy = intermolecular potential energy + random molecular kinetic energy.
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Learning objective
• Temperature difference sets the net direction of thermal energy transfer.
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Learning objective
• Phase change changes particle behaviour via energy transfer at constant temperature.
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Learning objective
• Use Q=mcΔT for temperature change and Q=mL for phase change.
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Learning objective
• Conduction, convection and thermal radiation are the primary mechanisms for thermal energy transfer.
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Learning objective
• Conduction: the difference in the kinetic energy of particles.
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Learning objective
• Conduction rate depends on material, area and temperature gradient: ΔQ/Δt = kAΔT/Δx.
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Learning objective
• Qualitative description of thermal energy transferred by convection due to fluid density differences.
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Learning objective
• Black-body radiation power follows Stefan-Boltzmann law: L=σAT^4. • Applies to emission of electromagnetic waves from a black-body surface.
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Learning objective
• Concept of apparent brightness b.
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Learning objective
• Apparent brightness relation: b = L/(4πd^2).
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Learning objective
• Use black-body spectrum and Wien’s law: λmaxT = 2.9x10^-3 m K. • Use λmax to infer black-body temperature.
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