Lesson 3.6.2.3

3.6.2.3 Molecular kinetic theory model Quiz: AQA Physics, Unit 6

20 questions

In partnership with Revision Ninja

Lesson 3.6.2.3, Molecular kinetic theory model: 20 multiple choice questions for the AQA Physics (7408), Unit 6: Further mechanics and thermal physics (A-level only), written with Revision Ninja.

Host it live on the board and students join with a game code on their own devices, or revise alone with Free Play. The answers are revealed in the game.

Host this setFree Play

The 20 questions

  1. Brownian motion of smoke particles is evidence for atoms because:

    • the particles move erratically due to unbalanced collisions with much smaller air molecules
    • the particles are stationary when observed microscopically
    • the particles move only because of gravity
    • the particles move in straight lines because of convection
  2. In the kinetic theory model of an ideal gas, collisions of molecules with the container walls are:

    • absent
    • perfectly elastic
    • inelastic, losing kinetic energy each time
    • perfectly inelastic
  3. A gas exerts pressure on its container because:

    • gas molecules are at rest
    • molecules attract the walls strongly
    • molecules repel only each other
    • molecules change momentum when they collide with the walls, giving a force per unit area
  4. The kinetic theory equation for an ideal gas of N molecules of mass m in volume V is:

    • pV = (1/2) N m c_rms
    • pV = 3 N m c_rms^2
    • pV = (1/3) N m c_rms^2
    • pV = N m c_rms
  5. The average kinetic energy of a molecule of an ideal gas is related to temperature by:

    • (3/2) kT
    • 2 kT
    • kT
    • (1/2) kT
  6. For an ideal gas the internal energy is:

    • zero at all temperatures
    • the sum of chemical bond energies
    • the potential energy of the molecules only
    • the kinetic energy of the atoms
  7. Which assumption is NOT made in the kinetic theory model of an ideal gas?

    • molecules attract each other strongly
    • collisions are elastic
    • the volume of molecules is negligible compared with the container
    • molecules move in random directions
  8. Take an ideal gas (N2, molar mass 0.028 kg mol^-1) at 300 K. Estimate its rms speed (R = 8.31 J K^-1 mol^-1).

    • about 1040 m s^-1
    • about 2700 m s^-1
    • about 520 m s^-1
    • about 260 m s^-1
  9. A gas has N = 1.0 x 10^23 molecules, each of mass 4.0 x 10^-26 kg, and rms speed 500 m s^-1. Its volume is 0.050 m^3. What is its pressure?

    • 6.7 x 10^3 Pa
    • 6.7 x 10^4 Pa
    • 3.3 x 10^3 Pa
    • 1.7 x 10^2 Pa
  10. If the absolute temperature of an ideal gas doubles, the mean kinetic energy of its molecules:

    • doubles
    • is unchanged
    • halves
    • quadruples
  11. Find c_rms for a molecule of mass 4.8 x 10^-26 kg at 300 K (k = 1.38 x 10^-23 J K^-1).

    • about 250 m s^-1
    • about 1000 m s^-1
    • about 130 m s^-1
    • about 510 m s^-1
  12. Which observation provides evidence for atoms through Brownian motion?

    • pollen grains settling steadily under gravity
    • erratic motion of pollen grains in water caused by unequal bombardment by water molecules
    • pollen grains stopping when water is cooled to zero
    • pollen grains moving only in straight lines
  13. At constant volume and temperature, doubling the number of molecules in a gas:

    • doubles the pressure
    • quadruples the pressure
    • leaves the pressure unchanged
    • halves the pressure
  14. A gas has 2.0 x 10^24 molecules at 300 K in a volume of 0.020 m^3 (k = 1.38 x 10^-23 J K^-1). What is its pressure?

    • about 8.3 x 10^3 Pa
    • about 4.1 x 10^5 Pa
    • about 1.0 x 10^5 Pa
    • about 4.1 x 10^3 Pa
  15. The rms speed of gas molecules at a fixed temperature, when the absolute temperature is quadrupled, becomes:

    • unchanged
    • double
    • quadruple
    • halve
  16. At the same temperature, compared with molecules of mass m, molecules of mass m/4 have a mean square speed that is:

    • the same
    • four times greater
    • four times smaller
    • twice as great
  17. Helium-like molecules of mass 6.6 x 10^-27 kg, number 2.0 x 10^23, rms speed 1200 m s^-1, fill 0.010 m^3. Estimate the pressure.

    • about 1.9 x 10^5 Pa
    • about 2.1 x 10^4 Pa
    • about 6.3 x 10^3 Pa
    • about 6.3 x 10^4 Pa
  18. A gas of 3.0 x 10^23 molecules at 300 K has total translational kinetic energy of about:

    • 3.7 kJ
    • 0.62 kJ
    • 620 J
    • 1.9 kJ
  19. A student says the gas laws prove kinetic theory. Which response is best?

    • Correct: the kinetic model was tested only after the gas laws were derived from it.
    • The gas laws are empirical; the kinetic model is a theory that explains them, and the laws alone do not prove the model.
    • Correct: the gas laws are derived directly from the kinetic model, so they prove it.
    • Incorrect: the gas laws are unrelated to molecular behaviour.
  20. Why does the kinetic model predict that gas pressure increases with temperature at constant volume?

    • higher temperature means greater molecular kinetic energy and faster wall collisions, so more force per unit area
    • molecules stick to the walls more strongly at higher temperature
    • higher temperature increases the number of molecules, raising pressure
    • molecules expand as temperature rises, pushing harder on the walls

All AQA Physics quizzes