IB ESS SL Topic 2 — Climate & Biomes Paper 1 & 2 Core idea ~12 min read

Circulating Air and Ocean Currents

Every desert on Earth sits at roughly the same latitude. Every rainforest belt sits at another. That is not luck — it is the result of the atmosphere moving heat away from the equator in three giant loops, helped along by the oceans doing the same job in water. Once you can draw those loops, biome distribution stops being a list to memorise and becomes something you can work out.

📚 What you need to know

Start with uneven heating

The Sun sends out roughly parallel rays. The Earth is a sphere, so those rays cannot possibly strike every part of it in the same way.

At the equator the rays hit almost head-on, so a beam of a given width lands on a small patch of ground. Near the poles the same beam arrives at a shallow angle and smears out across a much larger patch — the same energy, thinly spread. It also has more atmosphere to travel through, so more of it is absorbed or reflected on the way.

WHY THE EQUATOR GETS MORE ENERGY PER SQUARE METRE Equally spaced rays, but a curved surface to land on. parallel rays from the Sun pole 90° 60° 30° equator 0° green: rays arrive head-on, energy concentrated on a small area red: the same beam spread across a much larger area near the pole
The two thick arcs are lit by exactly one beam each. The red one is nearly twice as long, so every square metre inside it receives roughly half as much energy.
Say it in the exam like this: “Insolation is greater at the equator because the rays strike at a higher angle, concentrating the same energy on a smaller surface area.” That single sentence sets up almost every explanation on this page.

From heating to wind

Air behaves the way air always does: heat it and it expands, becomes less dense and rises. Cool it and it becomes denser and sinks. Do this over a whole planet and you get pressure cells.

🧩 One convection cell, step by step

  1. The Sun heats the surface. The air above it warms, expands and starts to rise.
  2. Surface pressure falls where the air is leaving, because there is less air pressing down. This is a low.
  3. The rising air adds pressure aloft, so it spreads out sideways high in the atmosphere.
  4. Up there it cools, becomes denser and begins to sink somewhere else.
  5. Where it lands, surface pressure rises. This is a high.
  6. Air rushes from the high to the low along the surface to even things out — that flow is wind. The bigger the pressure difference, the stronger the wind.
Wind is not the cause of anything here — it is the symptom. The cause is uneven heating; pressure difference is the mechanism; wind is the result. Write your answers in that order and they read like an explanation instead of a list.

The tricellular model

If the Earth did not rotate, there would be one huge loop per hemisphere: rise at the equator, sink at the pole. Rotation breaks that into three cells each side, and those three cells are what the syllabus calls the tricellular model.

THREE CELLS FROM THE EQUATOR TO THE POLE One hemisphere shown. The other is a mirror image of it. RISES SINKS RISES SINKS HADLEY CELL 0° to 30° FERREL CELL 30° to 60° POLAR CELL 60° to 90° trade winds westerlies polar easterlies LOW HIGH LOW HIGH 0° equator 30° 60° 90° pole
Follow the arrows round each box. Hadley and Polar turn the same way; Ferrel is dragged round backwards between them, like a cog caught between two other cogs.

The Hadley cell

The largest and strongest cell, running from the equator to about 30–40° north and south.

The Ferrel cell

The middle cell, roughly 30° to 60–70°. It is the awkward one, because it turns in the opposite direction to its neighbours — driven by them rather than by direct heating.

The Polar cell

The smallest and weakest cell, from about 60° to the poles.

Why this decides where biomes sit

Rising air means clouds and rain. Sinking air means clear, dry skies. That single rule, applied at four latitudes, gives you the global pattern of biomes.

LatitudeAir movementSurface pressureClimateBiome
0° equatorRisingLowHot and very wetTropical rainforest, then savanna at the edges
About 30°SinkingHighHot and dryHot desert
About 60°RisingLowMild and changeable, moderate rainTemperate forest and grassland
90° polesSinkingHighVery cold and dryTundra, polar desert and ice
The one-line version: deserts sit at 30° because that is where Hadley cell air comes back down, warming and drying as it sinks. If a question asks why the Sahara is dry, that sentence is the answer.

Ocean currents: the slower half of the system

The atmosphere is not the only thing moving heat around. Oceans absorb solar radiation in their surface layers and store it as thermal energy, and because water has a huge capacity to hold heat, they act as vast heat reservoirs.

Surface currents are driven by the winds you have just drawn, and bent by the Earth’s rotation. The result is a set of great loops called gyres, which carry warm water away from the equator and cold water back towards it.

SURFACE CURRENTS MOVE HEAT AWAY FROM THE EQUATOR A simplified ocean basin, with one loop in each hemisphere. WARM WARM COLD COLD northern gyre southern gyre equator Warm water leaving the equator keeps coasts mild; cold water returning cools them.
This is why western Europe is far milder than Canada at the same latitude, and why the coast of Namibia is a desert cooled by a cold current running up from the south.

What the currents do for climate and ecosystems

Cold currents are usually the productive ones. Cold water carries more dissolved oxygen and often brings nutrients up from the deep, which is why the world’s biggest fisheries sit next to cold currents, not warm ones.

Worked examples

EXAM Q1

Explain why hot deserts are found at about 30° north and south of the equator. [4]

Step 1: start at the equator High insolation heats the surface, so air rises and rain falls over the tropics. Step 2: follow the air polewards It travels at altitude, cools, and sinks at about 30°, completing the Hadley cell. Step 3: what sinking air does Descending air is compressed and warms, so it holds its moisture instead of releasing it. Step 4: the result Little cloud, little rain, high pressure at the surface all year. Sinking, warming, drying air at 30° gives hot desert the marks are in the chain, so keep it in order: rises, moves, sinks, dries
EXAM Q2

Outline how the tricellular model helps explain the distribution of terrestrial biomes. [3]

Point 1: it sets rainfall Rising limbs give high precipitation, sinking limbs give low precipitation. Point 2: it sets temperature bands Combined with insolation, this fixes the temperature of each latitude band. Point 3: temperature plus rainfall equals biome Rainforest at 0°, desert at 30°, temperate forest at 60°, tundra at the poles. The cells set the climate, and the climate sets the biome it also lets us predict biome shifts as the climate warms
EXAM Q3

Two coastal cities lie at the same latitude, but one is much milder in winter. Suggest why. [2]

Step 1: same latitude means same insolation So the difference cannot come from the Sun angle — look at the ocean. Step 2: name the mechanism A warm surface current carries heat from the tropics past the milder city and releases it to the air. The other city is likely cooled by a cold current, or is further from the sea “same latitude” in a question is a hint that the answer is currents or altitude

💡 Exam tip

⚠ Common mix-up

Up next: Zonation, Succession and Change in Ecosystems — from the global pattern down to how one patch of ground changes over time.

Want this explained one-to-one?

Book a free session with an experienced IB ESS tutor and get your trickiest topics made simple.

Book a Free Session →