IB Physics SL Topic C.2 — Modelling Waves Paper 1 & 2 Transverse vs longitudinal ~7 min read

Transverse & Longitudinal Waves

All waves shift energy along, but they don’t all wiggle the same way. The single question that sorts them into two families is: does the material shake across the direction of travel, or along it?

📘 What you need to know

The Deciding Question

Whatever the wave, the particles of the medium stay roughly where they are — they wobble about a fixed spot and pass the energy on to their neighbours. The illusion of movement along the wave comes from all those particles wobbling slightly out of step. What separates the two wave types is simply which way that wobble points compared with the direction the energy is heading.

Transverse Waves

In a transverse wave, the oscillations are perpendicular to the direction of motion and energy transfer — each particle bobs up and down while the wave rolls sideways. These are the wavy-line waves, with high points called crests (peaks) and low points called troughs.

direction of travel & energy particle oscillatesup & downcrest trough
The wave travels sideways (blue) while each particle only moves up and down (red) — perpendicular motion, with crests and troughs.

Crucially, transverse waves transfer energy without needing particles to pass it on — so they can travel through a vacuum. That’s why sunlight and its UV reach us across the empty vacuum of space. Examples include all electromagnetic waves (radio, visible light, UV) and mechanical ones like the vibrations on a plucked guitar string.

Longitudinal Waves

In a longitudinal wave, the oscillations are parallel to the direction of motion — each particle shuffles back and forth along the same line the wave travels. Instead of crests and troughs you get regions where particles bunch up and regions where they spread out:

particles oscillate left & right direction of travel compression rarefaction
Vertical lines are the particles. Where they crowd together is a compression (high pressure); where they spread out is a rarefaction (low pressure). Travel (blue) and oscillation (red) point the same way.

Longitudinal waves are mechanical — they need particles to carry the compressions along, so they cannot travel through a vacuum. That’s why space is silent: with no air, a sound wave has nothing to push. Examples are sound and ultrasound.

Quick recap: transverse = shakes across the travel direction (crests & troughs, can cross a vacuum); longitudinal = shakes along it (compressions & rarefactions, needs a medium).

Which Way Does a Particle Move Next?

A favourite exam question hands you a snapshot of a transverse wave, tells you which way it’s travelling, and asks which way a marked particle moves next. The trick: the wave shape just to the side the wave is coming from is about to arrive at that particle — so the particle’s next move copies the height of the wave just behind it.

🧭 Finding a particle’s next move

  1. Note the wave type — for a transverse wave the particle can only move up or down
  2. Note the travel direction of the wave from the arrow given
  3. Look just “upstream” — at the part of the wave that will reach the particle next
  4. The particle is about to take on that shape: if a crest is coming, it moves up; a trough, it moves down
WE 1

A snapshot shows a transverse wave travelling from right to left. A point P sits on the equilibrium line, with a crest just to its right. State the direction P moves immediately afterwards.

Reason it through Transverse wave, so P can only move up or down Use the travel direction The wave moves right to left, so the shape on P’s right is arriving next A crest is just to the right, so a crest is about to reach P P moves upwards The particle never moves left — only the wave pattern travels; P just rides up and down.
WE 2

A loudspeaker produces a sound wave that travels across a room.

(a) State the type of wave. (b) Describe how an air particle moves. (c) Explain why the sound cannot be heard in the vacuum of space.

Part (a) Sound is a longitudinal wave Part (b) Each air particle oscillates back and forth parallel to the direction the wave travels, about a fixed point Part (c) A longitudinal wave needs particles to pass on the compressions; a vacuum has none, so the wave cannot propagate No medium, no sound — which is why space is completely silent.

💡 Top tips

⚠ Common mistakes

Up next: we zoom in on the most familiar longitudinal wave of all — Sound Waves — and see how frequency and amplitude become pitch and volume.

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