🇬🇧 RIBA Architecture Parts 1, 2 and 3 · flashcards
RIBA Architecture Parts 1, 2 and 3 Construction Technology and Materials Flashcards
65 question-and-answer cards covering Construction Technology and Materials as it is examined in RIBA Architecture Parts 1, 2 and 3. 24 of them are printed below, taken from across the deck — no signup, no paywall on the preview.
24 sample cards from the Construction Technology and Materials deck
Sampled from the end of the deck, so these are different cards from the ones shown on the syllabus page.
Name the main elements of a traditional pitched roof and the typical minimum pitch distinction.
Elements: rafters, ridge, purlins, wall plate, ceiling joists/ties, battens and covering. 'Pitched' generally means a roof above about $10^{\circ}$; 'flat' roofs are typically below $10^{\circ}$ (with a minimum fall of around $1{:}40$ design to achieve $1{:}80$ finished to shed water).
What is a thermal bridge and what consequences does it cause?
A thermal bridge (cold bridge) is a localised area of the envelope with higher heat flow than surroundings (e.g. at junctions, lintels, balconies, where insulation is bridged by a conductive element). Consequences: increased heat loss, lower internal surface temperatures, risk of surface condensation and mould, and pattern staining.
What is the purpose of insulation continuity, and what is a 'psi value'?
Insulation continuity means the insulation layer wraps unbroken around the building (and air barrier continuity for airtightness), minimising thermal bridges. A psi value ($\psi$) is the linear thermal transmittance quantifying extra heat loss at a junction, in $\mathrm{W/(m \cdot K)}$, used to calculate junction heat loss.
What is a rainscreen cladding system and how does it manage water?
A rainscreen is an outer cladding skin set off a backing wall with a ventilated/drained cavity. The outer leaf takes the brunt of rain (often open-jointed/pressure-equalised); any water passing the joints drains down the cavity and is vented, while the backing wall carries the airtight/insulation/weather line.
What is the difference between a ventilated/drained rainscreen and a pressure-equalised rainscreen?
A drained-and-ventilated rainscreen relies on draining water that gets behind the cladding and ventilating to dry it. A pressure-equalised rainscreen uses a compartmented, vented cavity so air pressure behind the cladding equals external pressure, removing the pressure difference that drives water through joints.
Distinguish stick-system from unitised curtain walling.
Stick system: mullions, transoms and infill glazing are assembled piece-by-piece on site — flexible but slower/weather-dependent. Unitised system: storey-height factory-assembled panels are craned into place and interlock — faster on-site erection, better quality control, suited to tall buildings.
What does a window's U-value and g-value (solar factor) represent?
The U-value is the rate of heat transmission through the unit, $\mathrm{W/(m^{2} \cdot K)}$ — lower means better insulation. The g-value (solar heat gain coefficient) is the fraction of incident solar energy transmitted, between $0$ and $1$ — higher means more solar gain.
How does double or triple glazing reduce heat loss, and what improves it further?
Sealed cavities of low-conductivity gas (often argon) between panes reduce conductive/convective heat loss. Performance is improved by low-emissivity (low-E) coatings that reflect infrared back inward, wider/optimised cavity widths, warm-edge spacers, and an additional pane (triple glazing).
What is a damp-proof course (DPC) and a damp-proof membrane (DPM), and where is each used?
A DPC is a horizontal (and sometimes vertical) barrier in walls preventing rising damp from the ground travelling up the masonry, placed at least $150\,\mathrm{mm}$ above external ground level. A DPM is a barrier (often polythene) in/under floor slabs preventing ground moisture rising into the floor.
Compare tanking (Type A barrier), drained cavity (Type C) and structurally integral (Type B) basement waterproofing.
Per BS 8102: Type A (barrier) — applied waterproof membranes/coatings on the structure. Type B (structurally integral) — the watertight concrete structure itself resists water. Type C (drained cavity) — water is allowed in and managed/drained via an internal cavity drainage system to a sump/pump.
What is interstitial condensation and how does it differ from surface condensation?
Surface condensation forms on visible cold internal surfaces when their temperature falls below the room air dew point. Interstitial condensation forms within the thickness of the construction when warm, moist air diffuses through and reaches a layer below dew point — hidden, and damaging because it can rot/corrode concealed elements.
How does a vapour control layer (VCL) prevent interstitial condensation, and where is it positioned?
A VCL is a low vapour-permeability membrane that limits moisture vapour diffusing into the construction from the warm side. It is placed on the warm (internal) side of the insulation, while the outer layers are kept more vapour-open so any moisture that gets in can escape ('vapour-open outward').
What is the dew point and why is it important in moisture control?
The dew point is the temperature at which air becomes saturated (100% relative humidity) and water vapour condenses to liquid. In construction, condensation risk occurs wherever a surface or internal layer falls below the dew point of the adjacent air; designers keep the dew point outside vulnerable layers.
What construction conditions promote mould growth, and what relative humidity is critical?
Mould needs moisture, nutrients (dust/organic matter) and moderate temperature. It typically grows where surface relative humidity persistently exceeds about 80% (or surfaces stay damp), commonly at thermal bridges and poorly ventilated cold corners. Control via insulation continuity, ventilation, heating and reducing moisture sources.
Why does mass help acoustic insulation, and what is the mass law?
Heavier (denser) elements vibrate less for a given sound pressure, so they transmit less airborne sound. The mass law states that for a single solid panel, airborne sound insulation rises by about $6\,\mathrm{dB}$ for each doubling of mass per unit area (or doubling of frequency).
Distinguish airborne from impact sound, and how each is controlled.
Airborne sound (speech, music) travels through air and is reduced by mass, isolation and absorption. Impact sound (footsteps) is structure-borne from direct impact; it is controlled by resilient layers, floating floors, soft coverings and isolating the source from the structure to break the transmission path.
What is flanking transmission and how is it reduced?
Flanking transmission is sound that bypasses the main separating element by travelling through adjoining/connected elements (flanking walls, floors, junctions). It is reduced by detailing junctions to break continuity — discontinuous construction, flexible isolation, breaking rigid paths, and using independent/decoupled leaves.
Explain reaction to fire versus fire resistance.
Reaction to fire describes how a material contributes to a fire (ignitability, flame spread, heat release) — classified by Euroclasses A1, A2, B–F. Fire resistance is the ability of a building element (wall, floor, door) to maintain its function during fire for a period, measured in minutes against Loadbearing capacity (R), Integrity (E) and Insulation (I).
What do the REI fire-resistance criteria mean, e.g. REI 60?
R = loadbearing capacity (the element keeps supporting load); E = integrity (it resists passage of flames/hot gases); I = insulation (the unexposed face stays below a temperature limit). REI 60 means the element satisfies all three criteria for $60$ minutes.
What is compartmentation and the role of cavity barriers and fire stopping?
Compartmentation divides a building into fire-resisting cells (compartment walls/floors) to limit fire and smoke spread and protect escape routes. Cavity barriers close concealed cavities to stop fire/smoke spreading unseen; fire stopping seals service penetrations and joints to maintain the fire resistance of the compartment line.
What are the main causes and remedies for efflorescence on masonry?
Efflorescence is a white salt deposit left when water carrying soluble salts migrates to the masonry surface and evaporates. It is usually cosmetic; remedies include allowing it to weather off, dry brushing, controlling water ingress (keeping masonry dry), and using low-salt materials. Persistent efflorescence signals an ongoing moisture problem to fix.
What is sulfate attack on concrete/mortar and how is it prevented?
Sulfates (from groundwater, soils or some bricks) react with cement hydrates (notably tricalcium aluminate) to form expansive ettringite, causing expansion, cracking and softening. Prevention: use sulfate-resisting cement (low C3A), low-permeability concrete, and protect against sulfate-bearing water.
Describe the mechanism of reinforcement corrosion (carbonation and chloride attack) and its visible symptoms.
Concrete's alkalinity passivates steel; carbonation ($\ce{CO2}$ lowering pH) or chloride ingress destroys the passive layer, letting steel rust. Rust expands (up to several times its volume), cracking and spalling the cover concrete. Symptoms: cracking along bar lines, rust staining and spalling ('concrete cancer').
Distinguish rising damp, penetrating damp and condensation as causes of dampness.
Rising damp: ground moisture rising up walls by capillarity (failed/absent DPC), showing a tide mark low on walls. Penetrating damp: water entering laterally through the fabric (defective roof, walls, flashings, blocked cavity). Condensation: moisture from internal air depositing on cold surfaces — diagnosed by location, pattern and seasonality before remediation.
What this deck covers
The Construction Technology and Materials deck follows the RIBA Architecture Parts 1, 2 and 3 Construction Technology and Materials syllabus — 4 chapters and 20 topics — so questions land on material that is genuinely examinable rather than trivia around it. That works out to roughly 16.3 cards per chapter.
Answers are written to be recallable, not just readable — averaging about 313 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.
Construction Technology and Materials flashcards FAQ
How many Construction Technology and Materials flashcards are in this RIBA Architecture Parts 1, 2 and 3 deck?
65 cards. This page previews 24 of them, sampled evenly across the deck so you can judge the difficulty before installing anything.
Are these RIBA Architecture Parts 1, 2 and 3 flashcards free?
Yes. The preview here is free to read with no signup, and the full 65-card deck is free inside the Examius app.
What do the Construction Technology and Materials cards cover?
They follow the RIBA Architecture Parts 1, 2 and 3 Construction Technology and Materials syllabus — 4 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.