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Revision questions · ⁨Questões de revisão⁩

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Original teaching material. Check the course coverage gaps and your school’s current specification before using it for assessment. · ⁨Material didático original. Verifique as lacunas de cobertura do curso e a especificação atual da sua escola antes de usá-lo para avaliação.⁩

Original open focus revision; complete specification coverage remains unfinished.

1 · Motion graphs and acceleration

velocity · acceleration

ib_physics_sl:motion:open:1 · 2 marks · ⁨pontos⁩

What does area under a velocity-time graph represent?

  • Displacement · ⁨Deslocamento⁩
  • Acceleration · ⁨Aceleração⁩
  • Mass · ⁨Massa⁩
Answer and reasoning · ⁨Resposta e raciocínio⁩

Displacement · ⁨Deslocamento⁩

  • The gradient of a displacement-time graph is velocity. The area under a velocity-time graph gives displacement. A constant-acceleration formula is valid only when its assumption is justified.

ib_physics_sl:motion:open:2 · 4 marks · ⁨pontos⁩

Velocity changes from 3 to 15 metres per second in 6 s. Find acceleration.

Answer and reasoning · ⁨Resposta e raciocínio⁩

2 m/s²

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

Negative velocity indicates direction under the chosen sign convention; it does not necessarily mean slowing down.

2 · Forces, momentum and safe stopping

momentum · resultant force

ib_physics_sl:forces:open:1 · 2 marks · ⁨pontos⁩

For fixed momentum change, which reduces average stopping force?

  • Longer stopping time
  • Shorter stopping time
  • Ignoring external force
Answer and reasoning · ⁨Resposta e raciocínio⁩

Longer stopping time

  • Impulse equals momentum change. Increasing stopping time for the same momentum change reduces average force. Identify external forces before applying momentum conservation.

ib_physics_sl:forces:open:2 · 4 marks · ⁨pontos⁩

A 2 kg trolley travels at 3 metres per second. Find its momentum.

Answer and reasoning · ⁨Resposta e raciocínio⁩

6 kg·m/s

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

Balanced forces do not require the object to be at rest. Mass and weight have different units and meanings.

3 · Energy stores, work and efficiency

power · efficiency

ib_physics_sl:mechanical_energy:open:1 · 2 marks · ⁨pontos⁩

What happens to kinetic energy when speed doubles at fixed mass?

  • It doubles
  • It quadruples
  • It stays constant
Answer and reasoning · ⁨Resposta e raciocínio⁩

It quadruples

  • Define the system and useful output before calculating efficiency. Doubling speed quadruples kinetic energy at constant mass. Power describes transfer per time, not total energy.

ib_physics_sl:mechanical_energy:open:2 · 4 marks · ⁨pontos⁩

A device receives 250 J and gives 150 J useful output. Find efficiency as a percentage.

Answer and reasoning · ⁨Resposta e raciocínio⁩

60 %

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

Efficiency cannot exceed 100% for a properly defined energy balance. Energy dissipated by heating is still conserved.

4 · Thermal measurements and particle models

specific heat capacity · latent heat

ib_physics_sl:thermal:open:1 · 2 marks · ⁨pontos⁩

Why can temperature stay constant while a pure substance melts?

  • No energy enters
  • Energy changes particle arrangement
  • The thermometer must be broken
Answer and reasoning · ⁨Resposta e raciocínio⁩

Energy changes particle arrangement

  • Temperature relates to particle motion in a model; internal energy includes kinetic and potential contributions. During a change of state, energy can change particle arrangements rather than temperature.

ib_physics_sl:thermal:open:2 · 4 marks · ⁨pontos⁩

A 2 kg sample with c=500 J per kilogram per degree warms by 3 °C. Find energy gain.

Answer and reasoning · ⁨Resposta e raciocínio⁩

3000 J

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

A flat section of a heating curve can show a phase change, not absence of energy transfer. Do not substitute temperature for a temperature difference in E = mcΔT.

5 · Climate evidence, energy budgets and policy

mitigation · adaptation

ib_physics_sl:ess_climate:open:1 · 2 marks · ⁨pontos⁩

Which action is adaptation to flood risk?

  • Raising vulnerable electrical equipment above expected flood level
  • Only measuring global CO2
  • Pretending the risk is zero
Answer and reasoning · ⁨Resposta e raciocínio⁩

Raising vulnerable electrical equipment above expected flood level

  • Distinguish mitigation, which addresses drivers, from adaptation, which reduces harm from impacts. A policy assessment needs evidence about effectiveness, cost, equity and uncertainty; one criterion is not the entire decision.

ib_physics_sl:ess_climate:open:2 · 4 marks · ⁨pontos⁩

Incoming energy is 240 units and reflected energy 72. Find reflected percentage.

Answer and reasoning · ⁨Resposta e raciocínio⁩

30 %

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

The greenhouse effect is not the same process as ozone depletion. A carbon footprint estimate depends on its system boundary.

6 · Gas models and absolute temperature

absolute temperature · ideal gas

ib_physics_sl:gases:open:1 · 2 marks · ⁨pontos⁩

Which scale belongs in a gas-law temperature ratio?

  • Celsius
  • Kelvin
  • Either scale without conversion
Answer and reasoning · ⁨Resposta e raciocínio⁩

Kelvin

  • At fixed amount and volume, pressure is proportional to kelvin temperature. At fixed temperature and amount, pressure is inversely proportional to volume. State which quantities are fixed before choosing a relationship.

ib_physics_sl:gases:open:2 · 4 marks · ⁨pontos⁩

At fixed volume, pressure is 120 kPa at 300 K. Find pressure at 350 K.

Answer and reasoning · ⁨Resposta e raciocínio⁩

140 kPa

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

An ideal gas is a model with conditions of validity. Celsius zero is not zero molecular motion, and internal energy is not determined by pressure alone.

7 · Current, potential difference and resistance

current · potential difference

ib_physics_sl:circuits:open:1 · 2 marks · ⁨pontos⁩

How is a voltmeter connected to measure voltage across a resistor?

  • In parallel with the resistor
  • In series only
  • Across the ammeter only
Answer and reasoning · ⁨Resposta e raciocínio⁩

In parallel with the resistor

  • Current is the same through components in series. Potential differences add around the series path. In parallel, branches share the same potential difference, while branch currents sum at a junction.

ib_physics_sl:circuits:open:2 · 4 marks · ⁨pontos⁩

A component has 12 V across it and carries 0.40 A. Find resistance.

Answer and reasoning · ⁨Resposta e raciocínio⁩

30 Ω

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

Current is not used up by a lamp. A filament heats up, so its resistance need not remain constant as voltage changes.

8 · Oscillation, resonance and phase

resonance · damping

ib_physics_sl:oscillations:open:1 · 2 marks · ⁨pontos⁩

For ideal SHM, where is speed greatest?

  • At equilibrium
  • At maximum displacement
  • At every point equally
Answer and reasoning · ⁨Resposta e raciocínio⁩

At equilibrium

  • Velocity is greatest near equilibrium for ideal SHM, while acceleration magnitude is greatest at extreme displacement. Resonance can occur near the natural frequency under periodic driving, with amplitude limited by damping.

ib_physics_sl:oscillations:open:2 · 4 marks · ⁨pontos⁩

30 cycles take 45 s. Find period.

Answer and reasoning · ⁨Resposta e raciocínio⁩

1.5 s

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

Not every repeated motion is SHM. A force proportional to displacement but directed away from equilibrium does not produce SHM.

9 · Waves, measurement and refraction

wavelength · frequency

ib_physics_sl:waves:open:1 · 2 marks · ⁨pontos⁩

When a wave enters a slower medium, what stays constant?

  • Frequency · ⁨Frequência⁩
  • Wavelength · ⁨Comprimento de onda⁩
  • Speed · ⁨Velocidade⁩
Answer and reasoning · ⁨Resposta e raciocínio⁩

Frequency · ⁨Frequência⁩

  • At a boundary, frequency stays fixed by the source. A change of speed changes wavelength. Refraction follows from speed differences; angles are measured from the normal.

ib_physics_sl:waves:open:2 · 4 marks · ⁨pontos⁩

Frequency is 8 Hz and wavelength is 0.25 m. Find wave speed.

Answer and reasoning · ⁨Resposta e raciocínio⁩

2 m/s

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

The wave frequency does not change simply because the medium changes. A longitudinal wave has oscillations parallel to propagation.

10 · Spectral shifts: a low-speed astronomical estimate

redshift · rest wavelength

ib_physics_sl:light_doppler:open:1 · 2 marks · ⁨pontos⁩

What does an identified line shifting to a longer wavelength suggest in the stated model?

  • Recession along the line of sight
  • Light speed increased
  • The source frequency must be zero
Answer and reasoning · ⁨Resposta e raciocínio⁩

Recession along the line of sight

  • Compare a identified line with its laboratory rest wavelength. Use z = (observed−rest)/rest, then v approximately cz in the stated low-speed model. Do not apply this approximation without checking the regime or treating a cosmological redshift as a simple exact velocity.

ib_physics_sl:light_doppler:open:2 · 4 marks · ⁨pontos⁩

A 600 nm rest line is observed at 601.2 nm. Find z=(observed−rest)/rest.

Answer and reasoning · ⁨Resposta e raciocínio⁩

0.002

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

The approximate shift relation does not show that light travels faster from an approaching source. A single unidentified line cannot safely establish a redshift.

11 · Gravitational fields and orbital motion

gravitational field · centripetal force

ib_physics_sl:gravitation:open:1 · 2 marks · ⁨pontos⁩

What direction is the net force in uniform circular motion?

  • Toward the centre
  • Along the velocity
  • Always outward
Answer and reasoning · ⁨Resposta e raciocínio⁩

Toward the centre

  • For a point mass or outside a spherical mass, field strength follows an inverse-square distance dependence. Use distance from the centre, not height above the surface alone.

ib_physics_sl:gravitation:open:2 · 4 marks · ⁨pontos⁩

Field strength is 18 units at r. Find it at 3r for an inverse-square field.

Answer and reasoning · ⁨Resposta e raciocínio⁩

2

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

Weightlessness in an orbiting spacecraft means apparent weight is small in free fall, not that there is no gravitational field.

12 · Electric fields: force and a positive test charge

electric field strength · test charge

ib_physics_sl:electric_fields:open:1 · 2 marks · ⁨pontos⁩

What happens to force direction if the test charge changes sign?

  • It reverses in the same field
  • It always stays along the field
  • The field ceases to exist
Answer and reasoning · ⁨Resposta e raciocínio⁩

It reverses in the same field

  • In a uniform field between ideal parallel plates, E = V/d away from edge effects. The force is F = qE, so its direction reverses for a negative charge. Coulomb force between ideal point charges decreases with separation squared.

ib_physics_sl:electric_fields:open:2 · 4 marks · ⁨pontos⁩

Use E = V/d. Find E for 100 V across 0.025 m.

Answer and reasoning · ⁨Resposta e raciocínio⁩

4000 V/m

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

Field strength is a vector. Potential difference is energy per charge and is not the same quantity. A field-line drawing is a model, not a set of physical threads.

13 · Magnetic forces: turn velocity without increasing speed

magnetic force · momentum

ib_physics_sl:charged_motion:open:1 · 2 marks · ⁨pontos⁩

What changes under a magnetic force alone in perpendicular circular motion?

  • Velocity direction
  • Kinetic energy continuously increases
  • Charge magnitude
Answer and reasoning · ⁨Resposta e raciocínio⁩

Velocity direction

  • Equate magnetic force with mv²/r to obtain r = mv/(|q|B) for perpendicular motion. A stronger field makes a smaller radius at fixed momentum. Parallel entry gives zero magnetic force in this model.

ib_physics_sl:charged_motion:open:2 · 4 marks · ⁨pontos⁩

Use r = mv/(|q|B). For m=2×10⁻²⁷ kg, v=2×10⁶ m/s, |q|=1×10⁻¹⁹ C and B=0.20 T, find r.

Answer and reasoning · ⁨Resposta e raciocínio⁩

0.2 m

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

A magnetic force can change momentum direction without doing work. Adding an electric field can change the energy, so conclusions about a magnetic field alone do not cover every combined-field apparatus.

14 · Atomic models and line spectra

emission spectrum · energy level

ib_physics_sl:atomic_spectra:open:1 · 2 marks · ⁨pontos⁩

What produces a higher-frequency emitted photon?

  • A larger downward energy difference
  • Any transition upward without absorption
  • A smaller Planck constant for the same atom
Answer and reasoning · ⁨Resposta e raciocínio⁩

A larger downward energy difference

  • An emitted photon corresponds to a transition to a lower energy level. Absorption requires a compatible energy difference. Rutherford scattering supported a small dense nucleus, but that experiment alone did not establish the complete quantum model.

ib_physics_sl:atomic_spectra:open:2 · 4 marks · ⁨pontos⁩

Levels are −7.0 and −2.0 eV. Find the energy emitted in the downward transition.

Answer and reasoning · ⁨Resposta e raciocínio⁩

5 eV

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

Negative bound-state energies are relative to a chosen zero; they do not mean a negative photon energy is emitted. A larger downward energy difference gives higher frequency.

15 · Nuclear changes and radiation evidence

half-life · background radiation

ib_physics_sl:nuclear:open:1 · 2 marks · ⁨pontos⁩

Which count should be used for source activity?

  • Raw source-plus-background only
  • Measured count minus background over equal times
  • The largest repeated count only
Answer and reasoning · ⁨Resposta e raciocínio⁩

Measured count minus background over equal times

  • Subtract background counts measured over the same time interval. Distinguish irradiation from contamination. Shielding, distance and reduced exposure time can reduce risk under a school-controlled procedure.

ib_physics_sl:nuclear:open:2 · 4 marks · ⁨pontos⁩

An initial source count is 160 per minute. Find it after three half-lives.

Answer and reasoning · ⁨Resposta e raciocínio⁩

20 counts/min

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

An irradiated object is not automatically radioactive. A half-life does not predict the exact decay time of one nucleus.

16 · Fission: conserve charge and nucleons, account for energy

fission · chain reaction

ib_physics_sl:fission:open:1 · 2 marks · ⁨pontos⁩

What permits a continuing fission chain reaction?

  • Released neutrons initiate further fissions
  • Every emitted neutron must escape
  • Charge conservation is suspended
Answer and reasoning · ⁨Resposta e raciocínio⁩

Released neutrons initiate further fissions

  • Separate conservation of nucleon number from conservation of total energy. Released neutrons may initiate further fissions, escape or be absorbed. A controlled reactor and an uncontrolled chain reaction have different neutron-management conditions.

ib_physics_sl:fission:open:2 · 4 marks · ⁨pontos⁩

A U-235 nucleus plus one neutron produces fragments with mass numbers 141 and 92. How many neutrons balance the equation?

Answer and reasoning · ⁨Resposta e raciocínio⁩

3 neutrons

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

Mass number is not a precise mass in kilograms. Balanced integer labels alone do not calculate the released energy. Radioactive decay and neutron-induced fission are not interchangeable descriptions.

17 · Stars, radiation and scale

luminosity · flux

ib_physics_sl:space:open:1 · 2 marks · ⁨pontos⁩

At fixed luminosity, what happens to flux when distance doubles?

  • It halves
  • It becomes one quarter
  • It doubles
Answer and reasoning · ⁨Resposta e raciocínio⁩

It becomes one quarter

  • For isotropic emission without absorption, flux follows an inverse-square relationship with distance. Observed brightness alone therefore cannot establish luminosity.

ib_physics_sl:space:open:2 · 4 marks · ⁨pontos⁩

A source gives flux 18 units. Find flux at three times the distance.

Answer and reasoning · ⁨Resposta e raciocínio⁩

2

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

The Sun is not expected to become a supernova. Redshift can support cosmological expansion; it does not mean every nearby object must move away from every observer.

18 · Uncertainty, gradients and model testing

uncertainty · systematic error

ib_physics_sl:uncertainty:open:1 · 2 marks · ⁨pontos⁩

Which is most likely a systematic error?

  • A balance reads 0.20 g when empty
  • Repeated values fluctuate either side of the mean
  • Random differences in reaction time
Answer and reasoning · ⁨Resposta e raciocínio⁩

A balance reads 0.20 g when empty

  • For a product or quotient, adding fractional uncertainties is a common maximum-uncertainty approximation. For a difference, add absolute uncertainties. A nonzero intercept can reveal an offset or an incomplete model.

ib_physics_sl:uncertainty:open:2 · 4 marks · ⁨pontos⁩

A 40 cm reading has an absolute uncertainty of 1 cm. Find percentage uncertainty.

Answer and reasoning · ⁨Resposta e raciocínio⁩

2.5 %

  • Appropriate relation; consistent substitution; correct result; meaningful unit and interpretation.

Repeating readings reduces random uncertainty in a mean but does not automatically remove a zero error. Do not quote more decimal places than your measurement can support.

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