IB Physics HL Topic 3 — Oscillations & Waves Paper 1 & 2 Pitch, volume & speed ~12 min read

Sound Waves

Every sound you have ever heard was a squeeze of air arriving at your eardrum. A speaker cone pushes forward, air piles up in front of it; the cone pulls back, the air thins out. Squeeze, thin, squeeze, thin — and that pattern sprints across the room at about 340 metres every second. Sound is the everyday face of the longitudinal wave, and this page is about how it works.

📘 What you need to know

How a sound wave is made

Sound starts, like every wave, with an oscillating source — a loudspeaker cone, a guitar string, your vocal cords. As the source vibrates back and forth it keeps changing the density of the air right next to it.

Push forward and you crowd the air molecules together: a compression, a small region of high pressure. Pull back and you leave the molecules more spread out: a rarefaction, a region of low pressure. Those regions then travel outwards, one after another, and the air molecules themselves just shuffle back and forth on the spot.

A sound wave travelling through aircompression rarefaction λ compression to compression sound travels from source to listener
The speaker cone squeezes and stretches the air. Bunched lines are compressions (high pressure), spread lines are rarefactions (low pressure). One wavelength runs from one compression to the next.
Oscillating source
speaker, string
changes air
density
Compressions
& rarefactions
arrive at
Eardrum
vibrates
Because sound is longitudinal, it is always a mechanical wave — it needs particles to pass the squeeze along. Take the air away and there is nothing left to compress. That’s why the vacuum of space is completely silent, no matter how violent the explosion.

The spectrum of sound

Sound waves form a continuous spectrum of frequencies. Our ears, though, only respond to a slice in the middle of it:

The audible range 20 Hz  ≤  f  ≤  20 kHz

Anything below 20 Hz is infrasound; anything above 20 kHz is ultrasound. Both are perfectly real sound waves — your ear simply cannot detect them.

The spectrum of soundelephants humans bats infrasound audible range ultrasound 20 Hz 20 kHz increasing frequency
Sound below 20 Hz is infrasound; above 20 kHz it is ultrasound. Elephants rumble below our range; bats squeak above it.
RegionFrequencyCan humans hear it?Example
InfrasoundBelow 20 HzNoElephant calls, earthquakes
Audible range20 Hz – 20 kHzYesSpeech, music
UltrasoundAbove 20 kHzNoBat echolocation, medical scans
Feel the size: in air, a 20 Hz rumble has a wavelength of 340 ÷ 20 = 17 m — longer than a classroom. A 20 kHz squeak has a wavelength of just 17 mm. Same speed, wildly different λ.

Pitch and volume

Two properties of the wave control what you actually hear, and it’s easy to swap them by accident. Keep them separate:

small amplitude large amplitude low volume high volumelow frequency high frequency low pitch high pitch
Top row: same frequency, different amplitude — the volume changes. Bottom row: same amplitude, different frequency — the pitch changes. The red arrows mark the amplitude.
Turning up the volume knob does not make the music higher. It stretches the amplitude, so the speaker pushes the air harder — louder, same notes. Change the frequency instead and you change the note itself. Two knobs, two effects, never mixed up again.

The speed of sound

In air at room temperature, sound travels at roughly 340 m s−1. Two things change that number.

1. Temperature

The hotter the air, the faster the sound. Heating the air raises the average kinetic energy of its particles, so they are moving faster and pass the compression on to their neighbours more quickly.

2. The state of the medium

Sound is a hand-me-down of vibrations from particle to particle, so the closer the particles, the faster the hand-off:

MediumStateTypical speed of sound
Air (room temperature)Gas~340 m s−1
WaterLiquid~1500 m s−1
SteelSolid~5000 m s−1
VacuumNo sound at all

🎯 When a sound changes medium

  1. The frequency stays the same. It is fixed by the source that made the sound, not by the material.
  2. The speed changes — that’s a property of the new medium.
  3. So the wavelength must change to keep v = true. Faster medium → longer λ.
WE 1

A bat emits a call of frequency 40 kHz. Taking the speed of sound in air as 340 m s⁻¹, calculate the wavelength of the call, and state whether a human could hear it.

Step 1 — convert the frequency to hertz f = 40 kHz = 40 000 Hz Step 2 — rearrange the wave equation for λ λ = v / f λ = 340 / 40 000 = 0.0085 m λ = 8.5 mm Step 3 — compare with the audible range 40 kHz is above 20 kHz, so this is ultrasound. No human can hear it. Short wavelengths like this are exactly why bats can pick out small insects.
WE 2

A student stands 85 m from a large cliff and claps once. She hears the echo 0.50 s later. Calculate the speed of sound in the air.

Step 1 — find the distance the sound actually travels It goes to the cliff and back again. d = 2 × 85 = 170 m Step 2 — use speed = distance / time v = 170 / 0.50 v = 340 m s⁻¹ Forget the “and back” and you’d get 170 m s⁻¹ — exactly half. Every echo question hides that factor of 2.
WE 3

A tuning fork of frequency 500 Hz is struck and held against a steel rail. Sound travels at 340 m s⁻¹ in air and 5000 m s⁻¹ in steel. Calculate the wavelength of the note in each material.

Step 1 — the frequency is set by the fork, so it is 500 Hz in both Step 2 — wavelength in air, λ = v / f λ = 340 / 500 = 0.68 m Step 3 — wavelength in steel λ = 5000 / 500 = 10 m air: 0.68 m  |  steel: 10 m The note sounds identical — same f, same pitch. Only v and λ changed, and they changed together.

💡 Top tips

⚠ Common mistakes

Quick recap: Sound is a longitudinal mechanical wave made by an oscillating source changing the density of a medium, producing compressions and rarefactions. Frequency gives pitch, amplitude gives volume. Humans hear 20 Hz – 20 kHz; below is infrasound, above is ultrasound. Sound moves at about 340 m s−1 in air, faster when hotter, and fastest in solids — but never at all through a vacuum.
Sound needed a medium. Now meet the family that needs nothing at all: electromagnetic waves. They are transverse, they cross empty space, and every single one of them travels at the same enormous speed — the speed of light. That’s the next page.

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