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Engineering and Science Admissions Test (ESAT) Physics Module Flashcards

60 question-and-answer cards covering Physics Module as it is examined in Engineering and Science Admissions Test (ESAT). 24 of them are printed below, taken from across the deck — no signup, no paywall on the preview.

60Cards in deck
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20Syllabus topics
~189Chars per answer
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24 sample cards from the Physics Module deck

Sampled from the end of the deck, so these are different cards from the ones shown on the syllabus page.

  1. State Kirchhoff's two circuit laws.

    Current law: the sum of currents into a junction equals the sum out (conservation of charge). Voltage law: the sum of e.m.f.s around any loop equals the sum of potential differences (conservation of energy).

  2. How do current and potential difference behave in series and parallel circuits?

    Series: current is the same everywhere; voltage is shared (adds up) across components. Parallel: voltage is the same across each branch; current is shared (splits) between branches.

  3. Describe the I-V characteristic of a filament lamp and why it is non-ohmic.

    The graph is an S-shaped curve: as current increases the filament heats up, raising its resistance, so the gradient decreases. It is non-ohmic because resistance changes with temperature.

  4. State the wave equation linking speed, frequency and wavelength.

    $v = f\lambda$, where $v$ is wave speed ($\mathrm{m\,s^{-1}}$), $f$ is frequency (Hz) and $\lambda$ is wavelength (m). Also $f = \frac{1}{T}$ where $T$ is the period.

  5. Distinguish transverse and longitudinal waves, giving an example of each.

    Transverse: oscillations are perpendicular to the direction of energy transfer (e.g. light, water waves). Longitudinal: oscillations are parallel to energy transfer, with compressions and rarefactions (e.g. sound).

  6. Define amplitude, wavelength and frequency of a wave.

    Amplitude: maximum displacement from the rest position. Wavelength: distance between two adjacent points in phase (e.g. crest to crest). Frequency: number of complete waves passing a point per second (Hz).

  7. Name the four wave behaviours and briefly define each.

    Reflection: bouncing off a boundary. Refraction: change of direction due to a change in speed entering a new medium. Diffraction: spreading of waves through a gap or around an obstacle. Interference: superposition of two waves giving reinforcement or cancellation.

  8. State the law of reflection.

    The angle of incidence equals the angle of reflection ($\theta_{i} = \theta_{r}$), both measured from the normal, and the incident ray, reflected ray and normal lie in the same plane.

  9. List the regions of the electromagnetic spectrum in order of increasing frequency.

    Radio waves, microwaves, infrared, visible light, ultraviolet, X-rays, gamma rays (increasing frequency and energy, decreasing wavelength).

  10. What do all electromagnetic waves have in common, including their speed in a vacuum?

    They are transverse, transfer energy, can travel through a vacuum, and all travel at the same speed in vacuum: $c = 3.0 \times 10^{8}\ \mathrm{m\,s^{-1}}$.

  11. What is the audible frequency range for humans, and how does the speed of sound in air compare to its speed in solids?

    Humans hear roughly $20\ \mathrm{Hz}$ to $20\,000\ \mathrm{Hz}$. Sound travels faster in solids than in liquids, and faster in liquids than in gases (it needs a medium and cannot travel through a vacuum).

  12. Define specific heat capacity and give its equation.

    Specific heat capacity is the energy needed to raise the temperature of $1\ \mathrm{kg}$ of a substance by $1\ \mathrm{K}$. Equation: $Q = mc\Delta\theta$, with units of $c$ being $\mathrm{J\,kg^{-1}\,K^{-1}}$.

  13. Define specific latent heat and give its equation.

    Specific latent heat is the energy needed to change the state of $1\ \mathrm{kg}$ of a substance with no temperature change: $Q = mL$. Units of $L$: $\mathrm{J\,kg^{-1}}$ (fusion for melting, vaporisation for boiling).

  14. State the three combined gas laws (Boyle's, Charles's, Pressure law) and the ideal gas relation.

    Boyle: $PV = \text{const}$ (constant $T$). Charles: $\frac{V}{T} = \text{const}$ (constant $P$). Pressure law: $\frac{P}{T} = \text{const}$ (constant $V$). Combined: $\frac{PV}{T} = \text{const}$, with $T$ in kelvin.

  15. Name the three types of nuclear radiation and rank their penetrating and ionising power.

    Alpha ($\alpha$): most ionising, least penetrating (stopped by paper). Beta ($\beta$): medium (stopped by a few mm of aluminium). Gamma ($\gamma$): least ionising, most penetrating (reduced by thick lead/concrete).

  16. Define half-life of a radioactive isotope.

    The half-life is the average time taken for half the radioactive nuclei in a sample to decay, or equivalently for the activity (count rate) to fall to half its initial value.

  17. Write the changes in an alpha decay and a beta-minus decay.

    Alpha: $^{A}_{Z}X \rightarrow\ ^{A-4}_{Z-2}Y +\ ^{4}_{2}\alpha$. Beta-minus: $^{A}_{Z}X \rightarrow\ ^{\;A}_{Z+1}Y +\ ^{\;\;0}_{-1}\beta$ (a neutron becomes a proton plus an electron).

  18. Describe the basic structure of the nuclear atom (constituents and their relative charges).

    A small dense nucleus of protons (charge $+1$) and neutrons (charge $0$) surrounded by orbiting electrons (charge $-1$). Atomic number $Z$ = number of protons; mass number $A$ = protons + neutrons.

  19. Sketch the field pattern and force direction for magnetic fields, and state the motor-effect rule.

    Magnetic field lines run from north to south pole outside a magnet. A current-carrying wire in a field experiences a force given by Fleming's left-hand rule (thumb = force/motion, first finger = field, second finger = current).

  20. What does electromagnetic induction require, and what is its consequence (Faraday/Lenz)?

    A change in magnetic flux linking a conductor induces an e.m.f. The induced e.m.f. is proportional to the rate of change of flux (Faraday), and it opposes the change producing it (Lenz's law).

  21. Give the equation for gravitational field strength near Earth and its meaning.

    $g = \frac{F}{m}$ (force per unit mass on a test mass). Near Earth's surface $g \approx 9.81\ \mathrm{N\,kg^{-1}}$, numerically equal to the free-fall acceleration.

  22. List the SI base quantities and their units for mass, length, time, current and temperature.

    Mass: kilogram (kg); length: metre (m); time: second (s); electric current: ampere (A); thermodynamic temperature: kelvin (K). (Also amount: mole; luminous intensity: candela.)

  23. Distinguish a scalar from a vector and give two examples of each.

    A scalar has magnitude only (e.g. mass, energy, speed, temperature). A vector has magnitude and direction (e.g. force, velocity, acceleration, momentum).

  24. Give the SI prefixes and powers of ten for nano, micro, milli, kilo, mega and giga.

    nano $= 10^{-9}$, micro $= 10^{-6}$, milli $= 10^{-3}$, kilo $= 10^{3}$, mega $= 10^{6}$, giga $= 10^{9}$.

What this deck covers

The Physics Module deck follows the Engineering and Science Admissions Test (ESAT) Physics Module syllabus — 6 chapters and 20 topics — so questions land on material that is genuinely examinable rather than trivia around it. That works out to roughly 10.0 cards per chapter.

Answers are written to be recallable, not just readable — averaging about 189 characters, which is long enough to carry the reasoning and short enough to say out loud.

A deck like this earns its keep on the second and third pass. Read the syllabus first so you know the shape of the subject, then use the cards to find the specific facts that have not stuck.

Physics Module flashcards FAQ

How many Physics Module flashcards are in this Engineering and Science Admissions Test (ESAT) deck?

60 cards. This page previews 24 of them, sampled evenly across the deck so you can judge the difficulty before installing anything.

Are these Engineering and Science Admissions Test (ESAT) flashcards free?

Yes. The preview here is free to read with no signup, and the full 60-card deck is free inside the Examius app.

What do the Physics Module cards cover?

They follow the Engineering and Science Admissions Test (ESAT) Physics Module syllabus — 6 chapters and 20 topics — so the questions track what is actually examinable.

How should I use these flashcards?

Read the syllabus first so you know the shape of the subject, then drill the deck. Examius schedules each card with spaced repetition, so cards you keep missing come back sooner and ones you know drift further apart.