IB Biology HL B3.3 — Muscle & Motility Paper 1 & 2 Practical skill ~8 min read

Movement of Joints

Two people can both have a working knee and still bend it by very different amounts. To compare them you need a number, not a description. This page is about getting that number: what range of motion means, how a goniometer gives it to you, and how to avoid the sloppy technique that makes the reading useless.

📘 What you need to know

What “range of motion” actually means

Range of motion is simply the amount of movement available at a joint. It depends on:

Because different directions are involved, a full description of the hip needs several readings — flexion, extension, rotation, abduction and adduction — not one.

Range of motion is a number with a unit: degrees. If your answer to “what is the range of motion?” is “quite a lot”, you have not answered the question.

The goniometer

A goniometer is a protractor with two arms. One arm stays still, one moves, and the scale in the middle reads the angle between them.

Reading a goniometer Line the centre up with the joint, and each arm along a bone the angle centre goes over the joint arm that stays still arm that movesThe reading is the angle between the two arms, in degrees. The same technique works on any joint you are asked to measure.
The one part people rush is the centre. If it is not sitting over the joint, every reading you take afterwards is wrong.

🧩 How to take the measurement

  1. Start with the joint fully extended and line the goniometer up against it: centre over the joint, one arm along each bone.
  2. Read the angle while the joint is fully extended. Write it down before you move anything.
  3. Bend the joint as far as it will comfortably go, then realign the goniometer in the new position.
  4. Read the angle again.
  5. Subtract the smaller reading from the larger one. That difference is the range of motion.
Range of motion range of motion = angle at full flexion − angle at full extension
Two readings at the knee One reading straight, one reading bent, then take the difference leg as straight as it goes reading 5° knee bent as far as it goes reading 150°Range of motion here is 150 − 5 = 145 degrees. Repeat the whole thing three times and use the mean.
Notice that the straight leg does not read zero. Almost nobody’s does, which is exactly why you measure both ends instead of assuming one.

Getting a reading you can trust

This is a practical skill, so the examiner may ask how you would make your data reliable. Good answers talk about the technique, not just the equipment.

Other methods. Computer analysis can track and measure joint movement from video, which is how sports scientists study running technique. There are also phone apps that use the phone’s sensors to work like a goniometer.

Worked examples

WORKED EXAMPLE

A student measures a knee. Fully extended it reads 5°; fully bent it reads 150°. Calculate the range of motion. [1]

Take the difference between the two readings 150° − 5° = 145° Range of motion = 145° do not forget the degree sign — a number with no unit can lose the mark.
WORKED EXAMPLE

Three readings for full flexion of an elbow are 142°, 146° and 144°. Calculate the mean, and suggest why the three values differ. [3]

Step 1: add them up 142 + 146 + 144 = 432 Step 2: divide by the number of readings 432 ÷ 3 = 144 Mean = 144° Step 3: why they differ the goniometer is not placed in exactly the same spot each time, and the person may not bend the joint quite as far on every attempt.
WORKED EXAMPLE

Explain why the hip needs more than one range of motion measurement, but the knee does not. [2]

Compare the joint types The knee is a hinge joint, so it only flexes and extends — one direction of movement. Now the hip The hip is a ball and socket joint, so it also rotates and moves sideways. The hip moves in several dimensions, so each one needs its own measurement use the word “dimensions” — it is the syllabus wording.

💡 Exam tip

⚠ Common mix-up

Up next: Locomotion in Organisms — why animals bother moving around at all, and how bodies get reshaped by the way they travel.

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