GCSE Revision Aid: This resource is designed to support your revision and may contain errors. If you find a discrepancy with your class teaching, your teacher is correct — please let us know at gcserevise@scott.scottrix.co.uk.

PE6: Mechanics of Breathing

Foundation Higher AQAEdexcelOCREduqasCCEA

How the diaphragm and intercostal muscles create ventilation, and how breathing changes during exercise.

Fastmail

🌬️ The Process of Breathing

Key Principle: Breathing (ventilation) works on the basis of pressure differences. Air always moves from an area of high pressure to an area of low pressure. By changing the volume of the thorax (chest cavity), the body changes the pressure inside the lungs, causing air to move in or out.
Boyle's Law (simplified):
When volume increases, pressure decreases → air rushes IN (inspiration)
When volume decreases, pressure increases → air rushes OUT (expiration)

💨 Inspiration (Inhalation)

Inspiration is an ACTIVE process - it requires muscle contraction.

During inspiration, the following sequence occurs:

  1. The diaphragm contracts and moves downwards (flattens from its dome shape)
  2. The external intercostal muscles contract, pulling the ribs upwards and outwards
  3. These actions increase the volume of the thorax (chest cavity)
  4. As volume increases, pressure inside the lungs decreases below atmospheric pressure
  5. Air rushes into the lungs from the higher atmospheric pressure outside, down the pressure gradient
Structure Action During Inspiration Effect
Diaphragm Contracts and flattens (moves down) Increases thorax volume top-to-bottom
External intercostals Contract, lifting ribs up and out Increases thorax volume front-to-back and side-to-side
Internal intercostals Relax Allow ribs to move up and out

😮‍💨 Expiration (Exhalation)

Quiet expiration at rest is a PASSIVE process - it does not require muscle contraction. It relies on the elastic recoil of the lungs and the relaxation of the inspiratory muscles.

During quiet expiration at rest:

  1. The diaphragm relaxes and returns to its dome shape (moves upwards)
  2. The external intercostal muscles relax, allowing the ribs to move downwards and inwards
  3. These actions decrease the volume of the thorax
  4. As volume decreases, pressure inside the lungs increases above atmospheric pressure
  5. Air rushes out of the lungs down the pressure gradient
Forced expiration during exercise is an ACTIVE process. The internal intercostal muscles contract to pull the ribs down and in more forcefully. The abdominal muscles also contract, pushing the diaphragm up and compressing the lungs to expel air more quickly.
Feature Quiet Expiration (at rest) Forced Expiration (during exercise)
Process Passive (elastic recoil) Active (muscle contraction)
Diaphragm Relaxes (returns to dome shape) Pushed up by abdominal muscle contraction
External intercostals Relax Relax
Internal intercostals Relax Contract (pull ribs down and in)
Abdominal muscles Not involved Contract (compress abdomen, push diaphragm up)

🏃 Breathing During Exercise

During exercise, both the rate and depth of breathing increase to meet the higher demand for oxygen and to remove more carbon dioxide.

When exercise begins, the body responds by:

Breathing During a 400m Sprint

Before the race: breathing rate increases slightly due to anticipatory rise (adrenaline).

During the race: breathing rate and depth increase dramatically. Both inspiration and expiration become active processes. The internal intercostals and abdominal muscles contract forcefully during expiration. Tidal volume rises from ~500 ml to over 2,500 ml per breath.

After the race: breathing rate and depth remain elevated during recovery to repay the oxygen debt and remove lactic acid. They gradually return to resting levels over several minutes.

How is Breathing Regulated During Exercise?

📊 Summary Comparison

Feature Rest Exercise
Breathing rate 12-15 breaths/min 40-50+ breaths/min
Tidal volume ~500 ml 2,000-3,000 ml
Minute ventilation ~6-7.5 l/min 100-150+ l/min
Expiration Passive (elastic recoil) Active (internal intercostals + abdominals)
Inspiration Active (diaphragm + external intercostals) Active with greater force

❓ Practice Questions

Q1: Describe the role of the diaphragm during inspiration.

Q2: Explain why quiet expiration at rest is described as a passive process.

Q3: How does forced expiration during exercise differ from quiet expiration at rest?

Q4: Explain how an increase in thorax volume causes air to enter the lungs.

Q5: How is breathing rate regulated during exercise?

Q6: Calculate minute ventilation if tidal volume is 500 ml and breathing rate is 14 breaths/min.

✅ Answers

  1. During inspiration, the diaphragm contracts and moves downwards (flattens from its dome shape). This increases the volume of the thorax top-to-bottom, which decreases the pressure inside the lungs, causing air to rush in.
  2. Quiet expiration at rest is passive because it does not require muscle contraction. The diaphragm and external intercostal muscles simply relax, and the elastic recoil of the lungs and the weight of the ribs moving downwards and inwards decreases the thorax volume, increasing pressure and forcing air out.
  3. Forced expiration during exercise is an active process involving the contraction of the internal intercostal muscles (pulling ribs down and in) and the abdominal muscles (pushing the diaphragm up). This expels air more quickly and forcefully than passive expiration at rest.
  4. When the thorax volume increases (due to diaphragm contracting down and ribs moving up and out), the pressure inside the lungs decreases below atmospheric pressure. Air moves from the higher atmospheric pressure outside into the lower pressure inside the lungs, down the pressure gradient.
  5. Chemoreceptors in the aorta and carotid arteries detect rising CO₂ levels in the blood during exercise. They send signals to the medulla oblongata (respiratory centre), which sends nerve impulses to the diaphragm and intercostal muscles, increasing the rate and depth of breathing.
  6. Minute ventilation = tidal volume × breathing rate = 500 ml × 14 = 7,000 ml/min = 7.0 l/min.

🎯 Exam Tips

📝 Exam Technique

PE Exam Tips — Mechanics of Breathing:
1. For Mechanics of Breathing questions, use subject-specific terminology precisely
2. Support every point with specific evidence or examples
3. Show balanced analysis — consider different perspectives before reaching a conclusion
4. Link your understanding of Mechanics of Breathing to real-world contexts where possible
5. For longer answers, plan your response to address all parts of the question

⚠️ Common Errors

Watch Out!

Students often think lactic acid causes doms. Wrong: Lactic acid causes DOMS Correct: DOMS (delayed onset muscle soreness) is caused by micro-tears in muscle fibres, not lactic acid. Lactic acid is cleared within an hour of exercise.

Students often think veins always carry deoxygenated blood. Wrong: Veins always carry deoxygenated blood Correct: Pulmonary veins carry oxygenated blood from the lungs to the heart. It is arteries and veins relative to the heart that matters, not oxygenation.

Students often think the heart beats faster during exercise just because you need more oxygen. Wrong: The heart beats faster during exercise just because you need more oxygen Correct: Heart rate increases due to anticipatory rise (before exercise), increased CO2 in blood detected by chemoreceptors, and decreased vagal tone. It is a coordinated response, not just oxygen demand.

✍️ Model Answer

Full-Mark Response

6 marks: Explain how mechanics of breathing affects sporting performance.

Mechanics of Breathing has significant effects on sporting performance. [Key concept 1]: explain the mechanism with specific detail. [Key concept 2]: how this applies in a named sporting example. [Key concept 3]: the relationship between this topic and overall performance. A grade 9 answer uses precise anatomical/physiological terminology, specific sporting examples, and evaluates the relative importance of different factors.

Mark scheme: 2 marks per explained point with specific evidence, evaluation for top marks

📊 AO Deep Dive

Assessment Objective Analysis

GCSE PE tests four AOs: AO1 (Knowledge, 30%) — recall facts about Mechanics of Breathing including definitions, classifications and specific examples; AO2 (Application, 30%) — apply knowledge to sporting contexts and training scenarios; AO3 (Analysis and Evaluation, 25%) — analyse data (graphs, tables), evaluate training methods or strategies, and justify recommendations; AO4 (Practical, 15%) — demonstrate relevant skills. For grade 9, use precise terminology, support every point with named sporting examples, and evaluate rather than just describe. The difference between grade 5 and grade 9 is the quality of application and depth of evaluation.

📝 Exam Questions by Topic

🎬 Video Resources

Share this page

Ready to ace your GCSE PE exams?

Get the best revision books and guides to boost your grades.