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QCE Physics Units 3&4 — Paper 1 Combined Independent Practice Book

QCE Physics Units 3&4 — Paper 1 Combined Independent Practice Book — Free Online Pack 0

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QCE Units 3&4 External Examination 2026 Edition - Pack 0 v1.0
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QCE Physics Units 3&4 — Paper 1 Combined Independent Practice Book

25 questions

51 marks

Estimated duration: Perusal time 5 minutes; working time 90 minutes

Reading: 5 minutes perusal · Writing: 90 minutes

Read QCE Physics Units 3&4 — Paper 1 Combined Independent Practice Book online

Skill Align

Skill Align QCE Physics - Free Online Pack 0 Paper 1

An independently authored QCE Physics practice paper with worked answers and question-specific marking guidance.

Paper
Paper 1 Combined Independent Practice Book
Reading
5 minutes perusal
Writing
90 minutes
Assessment
51 marks

The current QCAA Physics formula and data book is supplied separately. A QCAA-approved scientific or graphics calculator may be used.

Section 1 - Multiple-choice questions

Questions 1-20 are multiple choice. Select the best answer for each question. Each question is worth 1 mark.

Question 1

1 mark
A projectile moves without significant air resistance. Which statement is correct at the highest point of its path?
  1. Its vertical velocity is zero, its horizontal velocity is unchanged and its acceleration is downward.
  2. Both its velocity and acceleration are zero.
  3. Its horizontal velocity is zero and its vertical velocity is greatest.
  4. Its acceleration is horizontal because the path is curved.

Question 2

1 mark
A positive charge of 2.0 microcoulombs moves through a potential decrease of 50 V. What is the change in its electric potential energy?
  1. +1.0 x 10^-4 J
  2. -1.0 x 10^-4 J
  3. -2.5 x 10^-8 J
  4. +2.5 x 10^7 J

Question 3

1 mark
Which interval is a proper-time interval?
  1. The interval measured only in the frame where both events occur at different positions.
  2. The largest reading from any two synchronised clocks.
  3. The interval measured by one clock present at both events.
  4. An interval that is identical in every inertial frame.

Question 4

1 mark
Light above a metal's threshold frequency has its intensity doubled while frequency remains constant. What changes in an ideal photoelectric experiment?
  1. The maximum kinetic energy doubles, but the emission rate is unchanged.
  2. Both stopping potential and maximum kinetic energy double.
  3. Emission stops because each photon now has half the energy.
  4. The emission rate increases, but the maximum photoelectron kinetic energy is unchanged.

Question 5

1 mark
Which valence-quark combination describes a proton?
  1. uud
  2. udd
  3. uuu
  4. ddu

Question 6

1 mark
A cart follows the same circular path at three times its original speed. Its mass is unchanged. How does the required centripetal force change?
  1. It becomes three times as large.
  2. It becomes one-third as large.
  3. It becomes nine times as large.
  4. It is unchanged because the radius is unchanged.

Question 7

1 mark
A straight wire carries conventional current east through a magnetic field directed vertically downward. In which direction is the magnetic force on the wire?
  1. South
  2. North
  3. Up
  4. East

Question 8

1 mark
Two flashes occur simultaneously at separated platform positions in the platform frame. What may an observer moving along the platform conclude?
  1. The flashes must be simultaneous because light has the same speed in all frames.
  2. Only one flash can be observed because the observer is moving.
  3. The earlier flash is determined solely by which lamp is brighter.
  4. The flashes need not be simultaneous because the observer's frame assigns different times to separated events.

Question 9

1 mark
A graph of stopping potential against light frequency is linear above threshold. Which physical quantity is represented by its gradient?
  1. eh
  2. h/e
  3. the work function only
  4. the speed of light

Question 10

1 mark
At the quark level, which change occurs in beta-minus decay of a neutron?
  1. A down quark changes into an up quark.
  2. An up quark changes into a down quark.
  3. All three quarks annihilate into photons.
  4. A lepton changes into a baryon.

Question 11

1 mark
Two small test masses, m and 4m, are placed separately at the same point in a planet's gravitational field. Which comparison is correct?
  1. The second experiences four times the field strength and four times the force.
  2. The first experiences four times the field strength because it is easier to accelerate.
  3. Both experience the same force because they occupy the same point.
  4. They experience the same gravitational-field strength, although the second experiences four times the force.

Question 12

1 mark
The north pole of a magnet approaches a conducting loop. Which statement describes the induced magnetic effect?
  1. The near face acts as a south pole to increase the magnet's speed.
  2. No current is induced until the magnet passes through the loop.
  3. The near face of the loop acts as a north pole to oppose the increasing flux.
  4. The induced field is always in the same direction as the magnet's field.

Question 13

1 mark
What is the Lorentz factor for an object moving at 0.80c?
  1. 1.25
  2. 0.60
  3. 2.78
  4. 1.67

Question 14

1 mark
A particle's momentum doubles. What happens to its de Broglie wavelength?
  1. It doubles.
  2. It becomes four times as large.
  3. It halves.
  4. It is unchanged because the particle's charge is unchanged.

Question 15

1 mark
In neutron beta-minus decay, n -> p + e- + anti-nu_e, what is the total lepton number before and after?
  1. 0 before and 0 after
  2. 1 before and 1 after
  3. 0 before and 2 after
  4. 1 before and 0 after

Question 16

1 mark
Two planets orbit the same star. Planet B has an orbital radius four times that of planet A. According to Kepler's third law, what is T_B/T_A?
  1. 4
  2. 8
  3. 16
  4. 2

Question 17

1 mark
The same electrical power is transmitted through the same cable at four times the voltage. What fraction of the original resistive power loss remains?
  1. 1/4
  2. 4
  3. 1/16
  4. 16

Question 18

1 mark
What energy is equivalent to a mass of 1.0 mg?
  1. 9.0 x 10^13 J
  2. 9.0 x 10^10 J
  3. 3.0 x 10^2 J
  4. 1.1 x 10^-11 J

Question 19

1 mark
Star X has a black-body peak wavelength shorter than star Y. What conclusion follows from Wien's displacement law?
  1. Star X has the lower surface temperature.
  2. The stars must have equal temperature but different radii.
  3. Peak wavelength gives only distance, not temperature.
  4. Star X has the higher surface temperature.

Question 20

1 mark
Which interaction can occur when a low-energy electron and positron annihilate while conserving momentum?
  1. They produce two photons travelling in different directions.
  2. They produce one stationary photon.
  3. They produce a single proton with no other products.
  4. They merge into a neutrino with electric charge -1.

Section 2 - Short-response questions

Questions 21-25 are short response. Answer every part, show relevant working and use the supplied evidence where required.

Question 21

3 marks
Stimulus

A rescue flare is launched from a platform 2.00 m above sea level at 28.0 m s^-1 and 35.0 degrees above the horizontal. Air resistance is negligible.

Use the following stimulus to answer all parts of this question.
Diagram Preview
28.0 m s^-1 at 35 degrees horizontal range flare path flight time 2.00 m platform sea level
(a) 3 marks
Determine the flare's initial horizontal and vertical velocity components, its flight time to sea level and its horizontal range.

Question 22

3 marks
Stimulus

A straight 0.180 m rail segment carries 3.50 A east through a uniform 0.420 T magnetic field directed vertically downward.

Use the following stimulus to answer all parts of this question.
(a) 3 marks
Calculate the magnetic force on the segment and determine its direction.

Question 23

5 marks
Stimulus

A muon has a proper mean lifetime of 2.20 microseconds and moves through the laboratory at 0.960c.

Use the following stimulus to answer all parts of this question.
(a) 2 marks
Calculate the Lorentz factor and the mean lifetime measured in the laboratory.
(b) 3 marks
Determine the mean laboratory distance travelled and interpret why the relativistic model predicts more muons reaching low altitude than a classical-lifetime model.

Question 24

9 marks
Stimulus

Monochromatic light illuminates a clean metal. Measured frequency f and stopping potential V_s are: (6.0 x 10^14 Hz, 0.30 V), (7.0 x 10^14 Hz, 0.71 V), (8.0 x 10^14 Hz, 1.12 V), (9.0 x 10^14 Hz, 1.54 V). Treat the trend as linear.

Use the following stimulus to answer all parts of this question.
Graph Preview
67891.541.120.710.3frequency (10^14 Hz)stopping potential (V)
(a) 3 marks
Analyse the data to determine the gradient of the stopping-potential graph and an experimental value for Planck's constant.
(b) 3 marks
Determine the threshold frequency and work function of the metal.
(c) 3 marks
Interpret how the trend supports the photon model and identify one limitation of the estimate.

Question 25

11 marks
Stimulus

A free neutron initially at rest undergoes beta-minus decay: n -> p + e- + anti-nu_e. Use the Standard Model and the 2026 conservation-law requirements.

Use the following stimulus to answer all parts of this question.
(a) 3 marks
Describe the quark change that converts the neutron into a proton.
(b) 4 marks
Apply charge, baryon-number and lepton-number conservation to the complete decay.
(c) 4 marks
Interpret the interaction in terms of the weak force and the exchanged gauge boson.

QCE and QCAA external assessments are administered by the Queensland Curriculum and Assessment Authority (QCAA). Skill Align is an independent publisher and is not affiliated with, authorised by, sponsored by, approved by, or endorsed by QCAA or the Queensland Government.

Copyright (c) 2026 Skill Align. Free for personal, non-commercial online viewing at https://skillalign.au. You may share the Skill Align page link. Except as permitted by law or with Skill Align's prior written permission, the pack itself must not be resold, copied, redistributed, republished, automatically extracted, or uploaded to a question bank. Every question, dataset, answer and marking description in this pack is original Skill Align content.

Worked Solutions And Marking Guide

General marking principles

  • Award each listed mark independently when the required physical relationship, working step or evidence statement is demonstrated.
  • Accept physically correct equivalent wording and logically equivalent calculations with appropriate units.
  • Carry forward a candidate's earlier numerical value when later working is physically consistent, unless the resulting answer is impossible.

Section 1 Question 1

Answer: Its vertical velocity is zero, its horizontal velocity is unchanged and its acceleration is downward.

Gravity continues to provide downward acceleration at the apex, while the absence of horizontal force leaves the horizontal velocity unchanged.

Section 1 Question 2

Answer: -1.0 x 10^-4 J

Using Delta U = q Delta V gives (2.0 x 10^-6)(-50) = -1.0 x 10^-4 J, so electric potential energy decreases.

Section 1 Question 3

Answer: The interval measured by one clock present at both events.

Proper time is recorded by a single clock following the worldline through both events; other inertial frames measure a dilated interval.

Section 1 Question 4

Answer: The emission rate increases, but the maximum photoelectron kinetic energy is unchanged.

Doubling intensity supplies more photons per second. Each photon still has energy hf, so the maximum kinetic energy and stopping potential do not change.

Section 1 Question 5

Answer: uud

Two up quarks and one down quark have charge +2/3 +2/3 -1/3 = +1, the proton charge.

Section 1 Question 6

Answer: It becomes nine times as large.

The relationship F = mv^2/r makes the force proportional to the square of speed, so a factor of three in speed gives a factor of nine in force.

Section 1 Question 7

Answer: North

The right-hand rule for I cross B gives east crossed with downward, which points north.

Section 1 Question 8

Answer: The flashes need not be simultaneous because the observer's frame assigns different times to separated events.

Special relativity makes simultaneity frame-dependent for spatially separated events, even though every inertial observer measures the same light speed.

Section 1 Question 9

Answer: h/e

From eV_s = hf - phi, V_s = (h/e)f - phi/e, so the gradient is Planck's constant divided by elementary charge.

Section 1 Question 10

Answer: A down quark changes into an up quark.

A neutron udd becomes a proton uud when one down quark changes to an up quark through the weak interaction.

Section 1 Question 11

Answer: They experience the same gravitational-field strength, although the second experiences four times the force.

Field strength is a property of the source and position. Since F = mg, increasing the test mass by four increases force by four without changing g.

Section 1 Question 12

Answer: The near face of the loop acts as a north pole to oppose the increasing flux.

Lenz's law requires the induced field to oppose the increase in magnetic flux, so the approaching north pole is repelled by a north face.

Section 1 Question 13

Answer: 1.67

Gamma = 1/sqrt(1 - 0.80^2) = 1/sqrt(0.36) = 1.67, so relativistic time and length effects are significant.

Section 1 Question 14

Answer: It halves.

The de Broglie relationship lambda = h/p makes wavelength inversely proportional to momentum.

Section 1 Question 15

Answer: 0 before and 0 after

The neutron and proton have lepton number zero. The electron contributes +1 and the electron antineutrino -1, giving zero after decay.

Section 1 Question 16

Answer: 8

For bodies orbiting the same central mass, T^2 is proportional to r^3. Therefore T_B/T_A = 4^(3/2) = 8.

Section 1 Question 17

Answer: 1/16

At fixed power, current becomes one quarter. Since cable loss is I^2R, the loss becomes (1/4)^2 = 1/16 of its original value.

Section 1 Question 18

Answer: 9.0 x 10^10 J

One milligram is 1.0 x 10^-6 kg. E = mc^2 = (1.0 x 10^-6)(3.0 x 10^8)^2 = 9.0 x 10^10 J.

Section 1 Question 19

Answer: Star X has the higher surface temperature.

Wien's law lambda_max T = constant means a smaller peak wavelength corresponds to a larger absolute temperature.

Section 1 Question 20

Answer: They produce two photons travelling in different directions.

Two photons can share the energy and carry equal and opposite momentum; a single photon cannot conserve momentum for a stationary pair.

Section 2 Question 21

(a)
  • The initial components are v_x = 28.0 cos 35.0 degrees = 22.9 m s^-1 and v_y = 28.0 sin 35.0 degrees = 16.1 m s^-1.
  • Solving 0 = 2.00 + 16.1t - 4.90t^2 gives the positive flight time t = 3.40 s.
  • Horizontal motion is uniform, so the range is x = 22.9 x 3.40 = 77.9 m.

Detailed marking criteria

Part a (1 mark)

Awards one mark for accurately establishing this question-specific point: The initial components are v_x = 28.0 cos 35.0 degrees = 22.9 m s^-1 and v_y = 28.0 sin 35.0 degrees = 16.1 m s^-1.

Part a (1 mark)

Awards one mark for accurately establishing this question-specific point: Solving 0 = 2.00 + 16.1t - 4.90t^2 gives the positive flight time t = 3.40 s.

Part a (1 mark)

Awards one mark for accurately establishing this question-specific point: Horizontal motion is uniform, so the range is x = 22.9 x 3.40 = 77.9 m.

Section 2 Question 22

(a)
  • For a perpendicular conductor, F = BIL = (0.420)(3.50)(0.180).
  • The force magnitude is 0.265 N to three significant figures.
  • The conventional-current right-hand rule gives a force towards the north.

Detailed marking criteria

Part a (1 mark)

Awards one mark for accurately establishing this question-specific point: For a perpendicular conductor, F = BIL = (0.420)(3.50)(0.180).

Part a (1 mark)

Awards one mark for accurately establishing this question-specific point: The force magnitude is 0.265 N to three significant figures.

Part a (1 mark)

Awards one mark for accurately establishing this question-specific point: The conventional-current right-hand rule gives a force towards the north.

Section 2 Question 23

(a)
  • The Lorentz factor is gamma = 1/sqrt(1 - 0.960^2) = 3.57.
  • The laboratory lifetime is Delta t = gamma Delta t_0 = 3.57 x 2.20 microseconds = 7.86 microseconds.
(b)
  • The mean relativistic distance is d = v Delta t = (0.960)(3.00 x 10^8)(7.86 x 10^-6) = 2.26 x 10^3 m.
  • Using the undilated lifetime would predict only 634 m, so the time-dilated laboratory lifetime gives a substantially longer survival distance.
  • The increased ground-level muon count is evidence consistent with time dilation rather than a change in the muon's proper lifetime.

Detailed marking criteria

Part a (1 mark)

Awards one mark for accurately establishing this question-specific point: The Lorentz factor is gamma = 1/sqrt(1 - 0.960^2) = 3.57.

Part a (1 mark)

Awards one mark for accurately establishing this question-specific point: The laboratory lifetime is Delta t = gamma Delta t_0 = 3.57 x 2.20 microseconds = 7.86 microseconds.

Part b (1 mark)

Awards one mark for accurately establishing this question-specific point: The mean relativistic distance is d = v Delta t = (0.960)(3.00 x 10^8)(7.86 x 10^-6) = 2.26 x 10^3 m.

Part b (1 mark)

Awards one mark for accurately establishing this question-specific point: Using the undilated lifetime would predict only 634 m, so the time-dilated laboratory lifetime gives a substantially longer survival distance.

Part b (1 mark)

Awards one mark for accurately establishing this question-specific point: The increased ground-level muon count is evidence consistent with time dilation rather than a change in the muon's proper lifetime.

Section 2 Question 24

(a)
  • Using widely separated points gives gradient approximately (1.54 - 0.30)/(3.0 x 10^14) = 4.13 x 10^-15 V s.
  • The photoelectric equation gives gradient h/e, so h = e x gradient.
  • h = (1.602 x 10^-19)(4.13 x 10^-15) = 6.62 x 10^-34 J s.
(b)
  • Extrapolating V_s = 0 gives a threshold frequency of approximately 5.27 x 10^14 Hz.
  • The work function is phi = hf_0 = (6.62 x 10^-34)(5.27 x 10^14) = 3.49 x 10^-19 J.
  • This work function is approximately 2.18 eV.
(c)
  • The non-zero threshold shows that emission depends on a minimum energy per photon, not only total beam intensity.
  • The linear trend follows eV_s = hf - phi and its physically plausible Planck-constant gradient strengthens the photon interpretation.
  • The estimate is limited by measurement scatter, surface contamination or uncertainty in extrapolating beyond the measured frequency range.

Detailed marking criteria

Part a (1 mark)

Awards one mark for accurately establishing this question-specific point: Using widely separated points gives gradient approximately (1.54 - 0.30)/(3.0 x 10^14) = 4.13 x 10^-15 V s.

Part a (1 mark)

Awards one mark for accurately establishing this question-specific point: The photoelectric equation gives gradient h/e, so h = e x gradient.

Part a (1 mark)

Awards one mark for accurately establishing this question-specific point: h = (1.602 x 10^-19)(4.13 x 10^-15) = 6.62 x 10^-34 J s.

Part b (1 mark)

Awards one mark for accurately establishing this question-specific point: Extrapolating V_s = 0 gives a threshold frequency of approximately 5.27 x 10^14 Hz.

Part b (1 mark)

Awards one mark for accurately establishing this question-specific point: The work function is phi = hf_0 = (6.62 x 10^-34)(5.27 x 10^14) = 3.49 x 10^-19 J.

Part b (1 mark)

Awards one mark for accurately establishing this question-specific point: This work function is approximately 2.18 eV.

Part c (1 mark)

Awards one mark for accurately establishing this question-specific point: The non-zero threshold shows that emission depends on a minimum energy per photon, not only total beam intensity.

Part c (1 mark)

Awards one mark for accurately establishing this question-specific point: The linear trend follows eV_s = hf - phi and its physically plausible Planck-constant gradient strengthens the photon interpretation.

Part c (1 mark)

Awards one mark for accurately establishing this question-specific point: The estimate is limited by measurement scatter, surface contamination or uncertainty in extrapolating beyond the measured frequency range.

Section 2 Question 25

(a)
  • The neutron has valence composition udd and the proton uud.
  • One down quark changes into an up quark.
  • The other two quarks act as spectators in the stated valence model.
(b)
  • Charge is conserved: 0 = +1 + (-1) + 0.
  • Baryon number is conserved: the neutron and proton each have baryon number +1, while both leptons have 0.
  • Lepton number is conserved: 0 = (+1 for e-) + (-1 for anti-nu_e).
  • The antineutrino is required alongside the electron for lepton-number, energy and momentum accounting.
(c)
  • At the first vertex, a down quark becomes an up quark and emits a virtual W- boson.
  • The W- carries electric charge -1, so charge is conserved at the quark vertex.
  • The virtual W- produces an electron and an electron antineutrino at the second vertex.
  • The process is a weak interaction; the presence of a W boson distinguishes it from electromagnetic photon exchange.

Detailed marking criteria

Part a (1 mark)

Awards one mark for accurately establishing this question-specific point: The neutron has valence composition udd and the proton uud.

Part a (1 mark)

Awards one mark for accurately establishing this question-specific point: One down quark changes into an up quark.

Part a (1 mark)

Awards one mark for accurately establishing this question-specific point: The other two quarks act as spectators in the stated valence model.

Part b (1 mark)

Awards one mark for accurately establishing this question-specific point: Charge is conserved: 0 = +1 + (-1) + 0.

Part b (1 mark)

Awards one mark for accurately establishing this question-specific point: Baryon number is conserved: the neutron and proton each have baryon number +1, while both leptons have 0.

Part b (1 mark)

Awards one mark for accurately establishing this question-specific point: Lepton number is conserved: 0 = (+1 for e-) + (-1 for anti-nu_e).

Part b (1 mark)

Awards one mark for accurately establishing this question-specific point: The antineutrino is required alongside the electron for lepton-number, energy and momentum accounting.

Part c (1 mark)

Awards one mark for accurately establishing this question-specific point: At the first vertex, a down quark becomes an up quark and emits a virtual W- boson.

Part c (1 mark)

Awards one mark for accurately establishing this question-specific point: The W- carries electric charge -1, so charge is conserved at the quark vertex.

Part c (1 mark)

Awards one mark for accurately establishing this question-specific point: The virtual W- produces an electron and an electron antineutrino at the second vertex.

Part c (1 mark)

Awards one mark for accurately establishing this question-specific point: The process is a weak interaction; the presence of a W boson distinguishes it from electromagnetic photon exchange.

Diagnostic Checklist

TopicQuestionsMarksMarks LostAction
Unit 3 Topic 1 - Gravity and motion Q1, Q6, Q11, Q16, Q21 7 ___ Review vectors, projectiles, circular motion, gravitation, satellites and Kepler's laws.
Unit 3 Topic 2 - Electromagnetism Q2, Q7, Q12, Q17, Q22 7 ___ Review electric and magnetic fields, forces, induction, generators, transformers and electromagnetic radiation.
Unit 4 Topic 1 - Special relativity Q3, Q8, Q13, Q18, Q23 9 ___ Review frames, simultaneity, time dilation, length contraction, momentum and mass-energy equivalence.
Unit 4 Topic 2 - Quantum theory Q4, Q9, Q14, Q19, Q24 13 ___ Review interference, black-body radiation, photons, atomic spectra and matter waves.
Unit 4 Topic 3 - The Standard Model Q5, Q10, Q15, Q20, Q25 15 ___ Review particle families, quark structure, gauge bosons, conservation laws and interaction diagrams.

What is included

Paper 1 Combined Independent Practice Book questions (51 marks)

Paper 2 Question and Response Book questions (50 marks)

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Queensland Certificate of Education (QCE) subjects and external assessments are administered by the Queensland Curriculum and Assessment Authority (QCAA). Skill Align is an independent publisher and is not affiliated with, authorised by, sponsored by, approved by, or endorsed by QCAA or the Queensland Government.

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