AP Physics 2 Thermodynamics: Building Thermal Concepts and Heat Transfer from First Principles

0.0(0)
Studied by 0 people
0%Unit 1 Mastery
0%Exam Mastery
Build your Mastery score
multiple choiceMultiple Choice
call kaiCall Kai
Supplemental Materials
Card Sorting

1/24

Last updated 3:12 PM on 3/12/26
Name
Mastery
Learn
Test
Matching
Spaced
Call with Kai

No analytics yet

Send a link to your students to track their progress

25 Terms

1
New cards

Thermodynamic system

The part of the universe chosen for analysis in a thermodynamics problem (e.g., a gas in a cylinder or coffee in a cup).

2
New cards

Surroundings

Everything outside the system boundary that can interact with the system (exchange energy and/or matter).

3
New cards

System boundary

The (often imaginary) surface that separates the system from the surroundings; what crosses it determines heat/work/mass transfer accounting.

4
New cards

Open system

A system that can exchange both matter and energy with the surroundings (e.g., boiling water in an open pot).

5
New cards

Closed system

A system that can exchange energy but not matter with the surroundings (e.g., sealed gas in a cylinder with a movable piston).

6
New cards

Isolated system

A system that exchanges neither matter nor energy with the surroundings (idealized: perfectly sealed and perfectly insulated).

7
New cards

State variable (state function)

A macroscopic quantity that depends only on the system’s current state, not the path taken (e.g., P, V, T, internal energy).

8
New cards

Thermal equilibrium

A condition where temperature is stable (and typically uniform) so there is no net heat transfer driven by temperature differences.

9
New cards

Zeroth Law of Thermodynamics

If A is in thermal equilibrium with C and B is in thermal equilibrium with C, then A and B are in thermal equilibrium (basis for the meaning of temperature and thermometers).

10
New cards

Heat

Energy transfer across the system boundary due to a temperature difference; not energy “stored” in an object.

11
New cards

Internal energy

Energy contained within a system at the microscopic level (random molecular motion/interactions); changes via heat and/or work transfers.

12
New cards

Work (thermodynamic)

Energy transfer across the boundary due to a force acting through a distance (commonly a gas pushing on a piston).

13
New cards

PV work (constant external pressure)

For expansion/compression against constant external pressure, the work done by the gas is W = PΔV; expansion (ΔV>0) gives positive W, compression gives negative W.

14
New cards

Pressure

Force per unit area: P = F/A; in gases it arises from molecular collisions with container walls. Unit: pascal (Pa = N/m²).

15
New cards

Ideal gas model

A model where gas molecules are point particles with negligible volume, no intermolecular forces (except during elastic collisions), and random motion; valid when gases are dilute and not near condensation.

16
New cards

Ideal Gas Law

Relationship among state variables for an ideal gas: PV = nRT (P pressure, V volume, n moles, T in kelvins, R ideal gas constant).

17
New cards

Combined gas law (fixed n)

For a constant amount of gas between two equilibrium states: (P₁V₁)/T₁ = (P₂V₂)/T₂ (T must be in kelvins).

18
New cards

Kelvin temperature conversion

Convert Celsius to kelvins for gas laws (and radiation): TK = TC + 273.15 (often +273 for AP approximations).

19
New cards

Kinetic theory

Microscopic model connecting particle motion/collisions to macroscopic gas properties like pressure and temperature.

20
New cards

Average translational kinetic energy (ideal gas)

For an ideal gas molecule: Kavg = (3/2)kBT, showing temperature is proportional to average kinetic energy per particle.

21
New cards

Root-mean-square speed

A typical molecular speed: vrms = √(3kBT/m); at the same T, lighter molecules have higher vrms, and vrms ∝ √T.

22
New cards

Specific heat

Energy required to raise the temperature of 1 kg of a material by 1 K; used in Q = mcΔT for temperature changes without phase change.

23
New cards

Latent heat

Energy per kg required for a phase change at constant temperature; phase-change energy is Q = mL (e.g., melting/boiling).

24
New cards

Calorimetry

Energy-conservation approach to thermal interactions; in an insulated (isolated) setup, the net heat exchange sums to zero: ΣQ = 0 (heat lost = heat gained).

25
New cards

Conduction

Heat transfer through direct molecular collisions in a material; steady-state slab model: Q/t = kA(Th−Tc)/L (larger A or ΔT increases rate; larger L decreases rate).

Explore top notes

note
Science test prep
Updated 1127d ago
0.0(0)
note
Chapter 3: Nations and Society
Updated 1080d ago
0.0(0)
note
Roman Mythology and Society
Updated 1062d ago
0.0(0)
note
Monetary Policy Notesheet
Updated 1109d ago
0.0(0)
note
HUMAN GEOGRAPHY
Updated 1276d ago
0.0(0)
note
10.1-10.4  Acids, Bases and Salts
Updated 1305d ago
0.0(0)
note
Genes
Updated 1231d ago
0.0(0)
note
Science test prep
Updated 1127d ago
0.0(0)
note
Chapter 3: Nations and Society
Updated 1080d ago
0.0(0)
note
Roman Mythology and Society
Updated 1062d ago
0.0(0)
note
Monetary Policy Notesheet
Updated 1109d ago
0.0(0)
note
HUMAN GEOGRAPHY
Updated 1276d ago
0.0(0)
note
10.1-10.4  Acids, Bases and Salts
Updated 1305d ago
0.0(0)
note
Genes
Updated 1231d ago
0.0(0)

Explore top flashcards

flashcards
La Technologie vocab
52
Updated 1259d ago
0.0(0)
flashcards
New isee vocab
204
Updated 122d ago
0.0(0)
flashcards
ANHB 1101: Becoming Human 1
259
Updated 1013d ago
0.0(0)
flashcards
Lecture 10 Part B
22
Updated 675d ago
0.0(0)
flashcards
Protein
27
Updated 549d ago
0.0(0)
flashcards
Cardiovascular System
64
Updated 316d ago
0.0(0)
flashcards
La Technologie vocab
52
Updated 1259d ago
0.0(0)
flashcards
New isee vocab
204
Updated 122d ago
0.0(0)
flashcards
ANHB 1101: Becoming Human 1
259
Updated 1013d ago
0.0(0)
flashcards
Lecture 10 Part B
22
Updated 675d ago
0.0(0)
flashcards
Protein
27
Updated 549d ago
0.0(0)
flashcards
Cardiovascular System
64
Updated 316d ago
0.0(0)