IB Biology HL Gas Exchange Systems Paper 1 & 2 ~11 min read

How Ventilation Works

You cannot pull air into your lungs. Nothing in your chest grabs it. What actually happens is that muscles make the space inside your chest bigger, the pressure inside drops below the pressure outside, and the air walks in on its own. Get that one idea and the whole topic falls into place.

📚 What you need to know

Why bother breathing at all?

Gas exchange at the alveolus only works while the air inside it is different from the blood outside it. If you took one breath and stopped, oxygen in that pocket of air would fall, carbon dioxide would build up, the gradients would flatten and diffusion would stop.

Ventilation keeps refreshing the air, so the alveolus stays high in oxygen and low in carbon dioxide. That is the whole job. Everything else is mechanics.

The rule behind every breath volume up → pressure down → air moves in
volume down → pressure up → air moves out
Same gas, different space Squeeze a gas into a smaller space and it pushes harder on the walls squeeze large volume, low pressure small volume, high pressure Air always moves from where pressure is higher to where it is lower
Your chest is the container. The muscles change its volume, and the pressure change does the rest.

Inspiration: the active one

Breathing in takes muscle work every single time.

Notice the order of cause and effect: muscles → volume → pressure → air movement. Answers that jump straight from “the diaphragm contracts” to “air comes in” miss the two marks in the middle.

Expiration: mostly the lazy one

At rest, breathing out costs you almost nothing. The muscles that worked so hard simply stop working.

This is why normal expiration is described as a passive process. Nothing contracts to push the air out; things relax and spring back.

Sometimes you need more than that – blowing out candles, coughing, or exercising hard. Then expiration becomes active:

One breath, two opposite movementsBREATHING IN BREATHING OUTair in ↓ air out ↑ ribs move up and out diaphragm contracts and flattens volume up, pressure downribs move down and in diaphragm relaxes and domes up volume down, pressure upBreathing in is active. Breathing out at rest is passive. The red line is the diaphragm: flat when it contracts, domed when it relaxes
Two things change chest volume at once – the diaphragm changes its height, the ribcage changes its width.
StageInspirationExpiration at rest
DiaphragmContracts, flattens, moves downRelaxes, returns to a dome
External intercostalsContractRelax
RibcageMoves up and outMoves down and in
Chest volumeIncreasesDecreases
Pressure in the thoraxFalls below atmosphericRises above atmospheric
Air movementIn, down the pressure gradientOut, down the pressure gradient
Energy neededActive, muscles contractPassive, muscles relax and tissues recoil

Antagonistic muscles

Muscles can only pull, never push. So moving the ribcage in two directions needs two sets of muscles working against each other:

When one set contracts the other relaxes. That is what antagonistic means, and it is a nice one to name in an answer.

🧠

Ex for Exit? No – the other way round

Students guess that external intercostals do expiration. They do not. External = breathing IN, internal = forced breathing out. Learn it as the exception it is.

Worked examples

WE 1

Describing inspiration

Describe how air is drawn into the lungs during inspiration. (4 marks)

Step 1: the muscles The diaphragm contracts and flattens and the external intercostal muscles contract. Step 2: the movement The ribcage moves upwards and outwards. Step 3: volume and pressure The volume of the thorax increases, so the pressure inside falls below atmospheric pressure. Step 4: the air Air moves down the pressure gradient from outside into the lungs. Muscles → volume up → pressure down → air in four marks, four steps – never skip the volume and pressure line
WE 2

Why expiration is described as passive

Explain why expiration at rest is described as a passive process, and how it differs during hard exercise. (3 marks)

Point 1: at rest The diaphragm and external intercostal muscles simply relax, so no muscle contraction is needed to push the air out. Point 2: what moves the air The stretched elastic fibres in the alveoli recoil and the ribcage drops under its own weight, reducing volume and raising pressure. Point 3: during exercise Expiration becomes active: internal intercostal muscles pull the ribs down and in, and abdominal muscles push the organs up against the diaphragm, forcing air out faster. At rest it is recoil and relaxation; forced out it needs muscles the word “recoil” is worth including – it is often on the mark scheme
WE 3

Linking ventilation to diffusion

Explain how ventilation increases the rate of gas exchange in the alveoli. (3 marks)

Point 1: what ventilation does It replaces the used air in the alveoli with fresh air from outside. Point 2: the gradients Fresh air keeps the oxygen concentration in the alveolus high and the carbon dioxide concentration low, compared with the blood. Point 3: the result Both concentration gradients stay steep, so oxygen keeps diffusing into the blood and carbon dioxide keeps diffusing out, at a fast rate. Fresh air = steep gradients = fast diffusion mention both gases; answers that only talk about oxygen usually drop a mark

💡 Exam tips

⚠ Common mistakes

Up next: Measuring Lung Volumes – how a spirometer turns all this movement into a graph you can read tidal volume, vital capacity and ventilation rate straight off.

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