IB ESS HL Topic 8 — Urban Systems Paper 1 & 2 HL only ~11 min read

Green Architecture

Everything on the last few pages, shrunk down to one building. Green architecture asks what a building is made of, how much energy and water it needs to run, and what happens to it at the end of its life. The surprising part is how much of the answer was worked out centuries ago, in places with no air conditioning and no choice.

📚 What you need to know

What a green building actually has

A green building, in section Passive features first, technology second. That order matters. solar panels green roof thick insulation daylight and shading bio-based materials rainwater tank greywater reused Insulation and orientation cost nothing to run, forever.
Solar panels get the attention, but insulation, orientation and shading usually save more energy for less money and need no maintenance.

Materials

Bio-based

Grown rather than mined. Bamboo regrows in a few years and is strong in tension. Hempcrete mixes hemp fibre with lime to make a light, insulating wall. Straw bales are compressed and rendered to form thick, highly insulating walls. All three are renewable, biodegradable and need far less energy to produce than steel, cement or brick.

Recycled

Glass, steel and concrete recovered from demolished buildings. Steel in particular can be recycled repeatedly without losing much strength, and reusing it avoids the enormous energy cost of smelting new metal.

The term worth knowing: embodied energy. This is all the energy used to extract, process, transport and assemble a material, before the building is even occupied. Cement and aluminium have very high embodied energy; straw, timber and earth have very low embodied energy. A building can be extremely efficient to run and still have been expensive to build in energy terms.

Energy and water

Passive design

Renewable integration

Solar panels, small wind turbines and geothermal systems supply clean energy. Some regenerative buildings generate more than they use across a year and export the surplus to the grid.

Water

WORKED EXAMPLE

A building has a roof area of 200 m2 in a place receiving 600 mm of rain a year. Calculate the volume of rainwater that could be collected in a year, in litres, and the average amount available per day.

Step 1: convert the rainfall to metres 600 mm = 0.6 m Step 2: volume = area × depth 200 × 0.6 = 120 m3 Step 3: convert to litres 120 × 1 000 = 120 000 litres per year 120 000 litres a year Step 4: per day 120 000 ÷ 365 = 329 About 330 litres a day on average In reality you would collect less, because some evaporates or is lost in the gutters, and rainfall is seasonal, so storage size matters as much as roof area.

Circular and regenerative building

Circular construction reuses and recycles materials during demolition and renovation, and designs new buildings so they can be disassembled — bolted rather than glued, so components can come out whole and be used again.

Regenerative architecture sets a higher bar: not just less harm, but active improvement.

Techniques worth naming

TechniqueHow it worksAdvantagesLimitations
Bale constructionCompressed straw bales used as building blocks, then renderedExcellent insulation, cheap, renewable, very low embodied energyVulnerable to damp; thick walls take floor space; needs skilled rendering
Bottle and plastic constructionWaste plastic bottles or blocks used as building unitsDiverts plastic waste, durable, low cost for housingPoor insulation; may degrade in strong sunlight; limited structural height
3D printed housesBioplastics or recycled concrete extruded layer by layerFast, little construction waste, low labour cost, highly customisableConcrete-based mixes still have high embodied carbon; needs power and expertise on site
Wind tower housesA barajeel tower catches breezes and channels them down into the buildingCools without electricity, uses local climate, centuries of proven useOnly works in hot dry climates with reliable wind; poor in humid conditions

The wind tower

The barajeel is a traditional Middle Eastern wind tower, still visible in historic homes in the UAE, Oman and Iran. It works on two simple physical principles at once, and it needs no energy at all.

The barajeel: cooling with no electricity Catch the breeze at height, let the warm air leave at the top. cool air in warm air out wind tower exhaust shaft cool air sinks and spreads living space Two principles: wind is stronger higher up, and warm air rises. Thick walls add thermal mass, so the house stays cool through the afternoon.
Modern buildings recreate this with fans and ducts and call it mechanical ventilation. The original version has no moving parts and no running cost.

Vernacular architecture

Vernacular architecture means buildings designed using local materials, local resources and traditional knowledge built up over generations. It reflects the culture, climate and history of a place, and it is sustainable almost by accident: when transport is difficult and energy is scarce, you build from what is nearby and you work with the weather rather than against it.

Standard examples: igloos in Arctic regions, where blocks of compacted snow insulate against extreme cold; thatched roof huts in the tropics, where local grasses shed heavy rain and allow air to move through; and the barajeel wind towers of the Middle East.

The interesting argument to make is that green architecture is often vernacular architecture rediscovered with better materials. Thick walls, orientation, shading and ventilation are not new technology. What is new is that we spent a century ignoring them because cheap energy made it possible.
WORKED EXAMPLE

Evaluate the use of 3D printed housing as a green building technique.

Step 1: the advantages Very fast to build, with little construction waste because material is placed only where it is needed. Low labour costs, and shapes can be adapted to the site at no extra cost. Step 2: the material problem Most printed housing uses concrete-based mixes, and cement production is a major source of carbon dioxide. Low waste does not automatically mean low embodied carbon. Step 3: other limits It needs a power supply, specialist equipment and trained operators on site, which restricts where it can realistically be used. Step 4: judgement Promising for rapid, affordable housing, but only genuinely green if the printing material is recycled or bio-based. Green in process, not always in material Separating the process from the material is what turns this from a list into an evaluation.
WORKED EXAMPLE

Explain why vernacular architecture is often more energy efficient than a modern building of the same size in the same climate.

Step 1: it was designed for the climate Wall thickness, window size, roof shape and orientation were all chosen for local conditions over generations of trial and error. Step 2: it assumes no external energy There was no heating or cooling system to fall back on, so the building itself had to do the work through thermal mass, shading and ventilation. Step 3: local materials Materials came from nearby, so embodied energy and transport emissions were very low. Step 4: the honest limitation Vernacular buildings may fall short on space, damp-proofing, fire safety or earthquake resistance, so the aim is to borrow the principles rather than copy the buildings. Designed by climate, not by machinery Ending with a limitation keeps the answer balanced, which “explain” questions still reward.

💡 Exam tip

⚠ Common mix-ups

That completes 8.2 Urban Systems and Urban Planning. If you are revising the whole of Topic 8, go back to How Human Populations Change and work forward — the population pages explain why the cities in these pages are growing in the first place.

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