IB Biology SL Topic 2 — Transport in Animals & Plants Paper 1 & 2 Practical skill ~9 min read

Measuring Pulse Rate (Skills)

A pulse is not blood sloshing past your fingers. It is the artery wall itself bouncing outwards. Once that clicks, you understand why you can only feel it in certain places and why the technique matters.

📚 What you need to know

What you are actually feeling

When the ventricles contract, they push a big slug of blood into arteries that are already full. The blood has to go somewhere, so the artery wall stretches outwards for a moment, then recoils. That stretch travels along the artery as a wave.

Put your finger on an artery near the surface and you feel that wave arrive. One wave equals one heartbeat, which is why pulse rate and heart rate give you the same number.

🤔 Why only at certain spots?

To feel the wall move, you need to squash the artery slightly against something firm. If the artery is buried under muscle and fat, your finger pressure spreads out and you feel nothing.

So the good spots have two things at once: the artery lies near the skin, and there is a bone directly behind it to press against. The wrist gives you both, which is why the radial artery is the standard choice.

The two places you can reliably feel a pulse Artery close to the skin, with something firm behind it to press against WRIST — RADIAL ARTERY NECK — CAROTID ARTERY grey band = wrist bone underneath runs over the wrist bones just below the base of the thumb runs down the side of the neck felt just below the jawTwo fingers, light pressure. Press hard and you flatten the artery. Take the neck pulse on one side only, and press very gently there.
The wrist is the safer choice for classwork. Heavy pressure on the neck can slow the heart down and make someone feel faint.

The method, step by step

🧩 Taking a pulse properly

  1. Sit still for a couple of minutes first if you want a resting rate. Walking to your seat and measuring straight away gives you a raised value.
  2. Place two fingers (index and middle) on the radial or carotid artery.
  3. Compress gently until you feel the beat. Too hard and you squash the artery shut; too soft and you feel nothing.
  4. Count every beat for 60 seconds, using a timer you can see without moving your hand.
  5. Repeat and take a mean. One reading is a data point, not a result.
Never use your thumb. The thumb has a large artery running into it, so you end up counting your own pulse instead of theirs — or worse, a confusing mixture of both.
Counting beats over a full minute Six beats in sixty seconds would be a pulse rate of 6 bpm — slow, but it makes the counting clear1 2 3 4 5 6 0 10 20 30 40 50 60 time / secondsCounting for the full minute needs no maths, so nothing can go wrong. Shorter counts are quicker but every miscount gets multiplied up.
Real resting traces have around 60 to 80 beats in this window. Six are drawn here so you can see the shape of each beat.

Short counts and why they cost you accuracy

Counting for 30 seconds and doubling is allowed and saves time. Counting for 15 seconds and multiplying by four is quicker still. But there is a hidden cost, and examiners love asking about it.

Counting timeWhat you doEffect of miscounting by one beat
60 secondsUse the number as it isAnswer is out by 1 bpm
30 secondsMultiply by 2Answer is out by 2 bpm
15 secondsMultiply by 4Answer is out by 4 bpm
10 secondsMultiply by 6Answer is out by 6 bpm
Any error you make gets multiplied by the same number your count does. That is the whole argument in one sentence, and it is worth a mark whenever a question asks you to evaluate the method.

Making the results trustworthy

Worked examples

WORKED EXAMPLE

A student counts 21 beats in 15 seconds. Calculate the pulse rate in beats per minute. [1 mark]

How many 15-second blocks fit in a minute? 60 ÷ 15 = 4 Scale the count up 21 × 4 = 84 Pulse rate = 84 bpm Always write the units. “84” on its own can be marked wrong.
WORKED EXAMPLE

Resting readings for one student were 70, 74 and 72 bpm. After five minutes of exercise they were 106, 110 and 108 bpm. Calculate the mean at rest, the mean after exercise, and the percentage increase. [3 marks]

Step 1: mean at rest (70 + 74 + 72) ÷ 3 = 216 ÷ 3 = 72 bpm Step 2: mean after exercise (106 + 110 + 108) ÷ 3 = 324 ÷ 3 = 108 bpm Step 3: percentage increase increase = 108 − 72 = 36 bpm (36 ÷ 72) × 100 = 50% 72 bpm at rest, 108 bpm after exercise, a 50% increase Percentage change always divides by the ORIGINAL value, not the new one.
WORKED EXAMPLE

A student measures their pulse using their thumb and gets a rate that keeps changing. Explain the problem and suggest an improvement. [2 marks]

Name the problem The thumb has its own artery and therefore its own pulse, so the student may be counting a mixture of two pulses. Give the fix Use the index and middle fingers on the radial artery instead, pressing gently, and repeat the count three times to find a mean. Thumb pulse interferes — use two fingers and repeat for a mean

💡 Exam tip

⚠ Common mix-up

Up next: Coronary Heart Disease (Skills) — what happens when an artery slowly blocks up, and how to judge whether a study really proves that something causes it.

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