IB ESS HL Topic 6 — Atmosphere & Climate Change Paper 2 — HL only Core skill ~9 min read

How the Atmosphere Changes With Altitude (HL)

Go up a mountain and two things change together: the air gets thinner and it gets colder. Both come from simple physics, and both are examinable as calculations. This is one of the few genuinely numerical sections in the topic, so it is worth easy marks.

📚 What you need to know

Why the air thins out

Gravity pulls every gas molecule towards Earth. Near the surface the molecules are pressed together by the weight of all the air above them, so air there is dense. Higher up there is less air pressing down, and the gravitational pull is slightly weaker, so molecules are further apart.

THE SAME VOLUME OF AIR, THREE ALTITUDES Same box, fewer molecules inside it SEA LEVEL 5 km UP 10 km UP dense air, plenty of oxygen thinner, harder to breathe very thin, oxygen tanks needed The percentage of oxygen barely changes — the number of molecules does
This is the point students miss: air at 8,000 m is still about 21% oxygen. There is simply far less air, so each breath delivers much less oxygen to the blood.
High-altitude climbers carry oxygen not because the air composition changed, but because the air pressure is too low to push enough oxygen into the bloodstream. Saying that correctly is worth a mark on its own.

The standard lapse rate

Learn this rate Temperature falls by about 1 °C for every 100 m of altitude gained
(the same as 10 °C per km, within the troposphere)
TEMPERATURE THROUGH THE TROPOSPHERE altitude (km) 0 2 4 6 8 10 -90 -60 -30 0 15 °C at sea level about -85 °C at 10 km 1 °C drop per 100 m temperature (°C) A straight line, so any altitude change gives a predictable temperature Above the troposphere the relationship reverses, which is why the layers exist
Real lapse rates vary with humidity and weather, which is why this one is called the standard rate. For exam calculations, use it as given.
WORKED EXAMPLE

A weather station at the base of a mountain sits at 200 m and records 18 °C. The summit is at 3,400 m. Use the standard lapse rate to estimate the summit temperature. [3]

Step 1: find the height gained 3400 – 200 = 3200 m Step 2: how many 100 m steps is that? 3200 ÷ 100 = 32 Step 3: apply 1 °C per step temperature drop = 32 × 1 = 32 °C 18 – 32 = -14 Summit temperature is about -14 °C Use the height gained, not the summit height. Starting from 3,400 instead of 3,200 is the standard error here.

Why this shapes ecosystems

The lapse rate is not just a physics fact — it explains why a single mountain can hold several different habitats.

Exam boundary: you do not need to memorise specific pressures or gas volumes at particular altitudes. You do need the lapse rate, the reason for thinning, and the 10 km limit of the troposphere.

💡 Exam tip

⚠️ Common mix-up

Up next: Milankovitch Cycles (HL) — the slow orbital changes that drive ice ages, and why they cannot explain what is happening now.

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