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BOOK I · Meet Music CHAPTER 01
BOOK I · Sound CHAPTER 1 · Sound

What is sound?

Sound is vibration.

Vibration is a quick back-and-forth movement of particles.

A voice, drum, or guitar string makes sound when it vibrates.

particles moving back and forth = vibration

Sound waves

A vibration makes a sound wave.

The wave carries sound away from what is vibrating.

That is how a voice or instrument can reach your ears.

sound wave

Amplitude

Amplitude is the size of the wave.

Bigger amplitude sounds louder. Smaller amplitude sounds softer.

We hear this every day. Turning the volume up makes a sound louder, while turning it down makes it softer—just like a yell compared with a whisper.

LOUDER
SOFTER

Frequency

Frequency tells us how fast something vibrates.

Slower vibration gives us a lower pitch. Faster vibration gives us a higher pitch.

LOWER PITCH stretched out
HIGHER PITCH closer together

How do instruments make sound?

Every instrument begins with vibration.

What vibrates is different from instrument to instrument.

STRING
AIR
PERCUSSION
PIANO

Strings

A string makes sound when it vibrates.

It can be plucked, bowed, or struck.

Guitar, violin, harp, and piano all use vibrating strings.

Air

Wind and brass instruments use a vibrating column of air.

The player starts the vibration by blowing.

Flute, clarinet, trumpet, and trombone all use vibrating air.

Percussion

Percussion instruments make sound when part of the instrument vibrates after it is struck, shaken, or scraped.

A cymbal vibrates after it is struck. Drums, bells, and xylophone bars vibrate too.

How does a piano make sound?

A piano uses a key, a metal action rod, a felt-covered end, a string, and a damper.

When you press the key, the metal rod moves upward. The felt-covered end reaches the string from underneath, and the string vibrates.

The damper lifts away while the note sounds, then returns to stop the string from vibrating.

See what vibrates

Choose an instrument family.

What family is the cello from?

CELLO

Choose one family.

What family is the saxophone from?

SAXOPHONE

Choose one family.

What family is the tambourine from?

TAMBOURINE

Choose one family.

What did we discover?

Here are the key ideas to remember.

01

Every instrument begins with vibration.

02

Strings make sound when the string vibrates.

03

Wind and brass instruments use vibrating air.

04

Percussion instruments vibrate after they are struck, shaken, or scraped.

05

A piano uses a hammer to strike a string, so it works like both a percussion and string instrument.

You explored how instruments make sound.

Different instruments vibrate in different ways, but vibration is the beginning of every sound.

stringsairpercussionpiano

Change the wave

This graph is a representation of changing pressure over time. The air itself is not moving through space in this wavy shape; air particles oscillate back and forth while the disturbance travels onward.
Frequency controls how many cycles fit into the same time. Amplitude controls the height of the graph.

Watch a sound wave travel

Press the wave and watch the vibration travel outward.

Change the amplitude

Choose an amplitude level and compare how the wave and volume change.

MEDIUM
Medium amplitude makes a medium-sized wave and a medium-volume sound.

Change the frequency

Choose a lower or higher frequency. The amplitude stays the same while the wave gets more spread out or closer together.

LOWER PITCH
Lower frequency means slower vibration and a lower pitch.

What did we discover?

Here are the key ideas to remember.

01

Sound is vibration.

02

A sound wave is a way to see the vibration.

03

Amplitude changes volume: bigger is louder, smaller is softer.

04

Frequency changes pitch: faster is higher, slower is lower.

You have explored sound.

You followed sound from vibration into a traveling wave and explored how frequency and amplitude change what you hear.

vibrationsound waveamplitudevolumefrequencypitch

How does sound get from here to there?

Sound travels through matter.

A vibration begins at a source, then nearby particles pass that vibration along.

The particles do not travel to your ear

Each particle moves only a little, bumping the next particle and passing the vibration onward.

The energy travels. The particles stay near their own place.

Sound needs something to travel through

Sound can move through gases, liquids, and solids because all three contain particles that can pass vibration along.

AIR gas

Particles are spread farther apart, but they still pass the vibration along.

WATER liquid

Particles are closer together and can pass vibration through the liquid.

WOOD solid

Particles are packed closely together, so vibration can pass from one to the next.

What about empty space?

Sound needs matter to travel. But what happens when there is little or no matter at all?

Scientists call a space with little or no matter a vacuum.

VIBRATION
VACUUM space with little or no matter

Outer space is nearly a vacuum, so there are not enough nearby particles to carry ordinary sound.

In a vacuum, sound cannot travel.

What did we discover?

Here are the key ideas to remember.

01

A vibrating source begins a sound.

02

Nearby particles pass the vibration to their neighbors.

03

The vibration travels through matter; the particles do not travel all the way with it.

04

Without matter—such as in a vacuum—sound cannot travel.

Sound made the journey.

A vibration began at its source, traveled through matter, and reached a listener.

sourceparticlesmattervibrationvacuum

How does a vibration become something you hear?

Hearing is a chain reaction.

Sound reaches the ear as vibration. Different parts of the ear collect it, transfer it, change it into nerve signals, and send those signals to the brain.

EARcollects sound
→
VIBRATIONmoves inward
→
SIGNALtravels by nerve
→
HEARINGsound is recognized

The outer ear collects sound

The visible part of your ear is the pinna. Its shape helps collect sound waves and guide them into the ear canal.

EAR CANAL

The eardrum begins to vibrate

At the end of the ear canal is a thin membrane called the eardrum, or tympanic membrane. When sound reaches it, the membrane vibrates back and forth.

EAR CANAL
EARDRUM tympanic membrane

Three tiny bones pass the vibration along

Behind the eardrum is the middle ear. It contains the three smallest bones in the human body: the malleus, incus, and stapes.

Together, these bones are called the ossicles. They transfer the eardrum's vibration deeper into the ear.

EARDRUM MALLEUShammer INCUS STAPESstirrup INNER EAR
VIBRATION→EARDRUM→ MALLEUS→INCUS (anvil)→ STAPES→INNER EAR

Inside the cochlea, movement becomes a nerve signal

The cochlea is a fluid-filled structure in the inner ear. Vibration entering the cochlea creates movement in its fluid.

Inside are specialized hair cells. Their tiny hair-like structures bend with the movement and help convert mechanical vibration into electrical signals.

STAPES COCHLEA HAIR CELLS ELECTRICAL SIGNAL OVAL WINDOW

Your ear detects it. Your brain recognizes it.

The electrical signals leave the inner ear through the auditory nerve and travel to the brain.

The brain processes those signals so you can recognize what you are hearing—such as a voice, a piano note, or a sudden clap.

COCHLEA creates electrical signals
AUDITORY NERVE carries the signals
BRAIN recognizes the sound
mechanical vibration→ electrical signal→ recognized sound

What did we discover?

Here are the key ideas to remember.

01

The pinna collects sound and guides it through the ear canal.

02

Sound makes the eardrum vibrate.

03

The ossicles transfer the vibration through the middle ear.

04

Movement inside the cochlea bends specialized hair cells.

05

The auditory nerve carries electrical signals to the brain, where sound is processed and recognized.

Now you know how we hear sound.

A vibration entered the ear, moved through its structures, became a nerve signal, and was processed by the brain.

pinnaeardrumossiclescochleaauditory nervebrain

Pitch is the height of a sound.

Some sounds feel high. Others feel low.

Frequency is the scientific term for how often a vibration repeats. We measure frequency in hertz (Hz). Faster vibrations have a higher frequency and we hear them as a higher pitch; slower vibrations have a lower frequency and we hear them as a lower pitch.

That quality is called pitch. A bird's chirp may sound high, while a large drum or low piano note may sound low.

Pitch does not tell us how loud a sound is. It tells us where the sound seems to sit from low to high.

LOW PITCH lower, broader wave
HIGH PITCH higher, closer wave

Faster vibrations make higher pitches.

Remember frequency from Chapter 1? Frequency is how quickly a vibration repeats.

When the vibration repeats slowly, we hear a lower pitch. When it repeats more quickly, we hear a higher pitch.

LOWER PITCHstretched out
HIGHER PITCHcloser together

What makes a string sound higher or lower?

A vibrating string can change pitch. Shorter vibrating lengths tend to vibrate faster and sound higher; longer vibrating lengths tend to vibrate more slowly and sound lower.

This is one reason string players change the vibrating length of a string with their fingers.

High and low can happen on many instruments.

Pitch is not tied to one instrument. Voices, strings, winds, percussion, and keyboards can all produce pitches at different heights.

Listen for the direction: does the sound move higher, lower, or stay about the same?

1 / 4 LOOK + LISTEN

Is this sound wave showing a high or low pitch?

Look at the wave, listen, then choose.

Pitch can move up, down, or repeat.

Once we can hear high and low, we can follow the direction of pitches in music.

A sequence can rise toward higher sounds, fall toward lower sounds, or repeat at the same pitch.

Choose a direction to see and hear the notes.

What did we discover?

Here are the key ideas to remember.

01

Pitch describes how high or low a sound is.

02

Slower vibrations produce lower pitches; faster vibrations produce higher pitches.

03

Changing the vibrating length of a string can change its pitch.

04

Many kinds of instruments and voices can make high and low sounds.

05

Pitches can move higher, lower, or repeat at the same height.

Now you can follow pitch from low to high.

You connected what you hear to vibration speed and learned to recognize the direction of pitch.

pitchlowhighvibration speedvibrating lengthdirection

Amplitude

Amplitude describes the size of a vibration or sound wave.

When a vibration moves only a small distance from its resting position, it has a smaller amplitude.

When it moves farther from its resting position, it has a larger amplitude.

We can hear this difference: smaller amplitudes usually sound softer, while larger amplitudes usually sound louder.

SMALLER AMPLITUDEsofter sound
LARGER AMPLITUDElouder sound

Amplitude measures how far the vibration moves.

The middle line is the vibration's resting position. Amplitude measures the distance from that resting position to the greatest displacement.

Press each example to watch the same vibration move by a different amount.

Amplitude changes loudness—not pitch.

The frequency can stay exactly the same while the amplitude changes.

That means the pitch stays the same, but the sound becomes softer or louder.

Press each wave and compare.

Musicians shape loud and soft sounds.

Amplitude is the physical measurement. Loudness is what we perceive when we hear the sound.

Musicians use changes in loudness to create contrast, direction, and expression.

In music, changes in loudness are part of dynamics — the way musicians shape softer and louder sounds for expression.

Crescendo: the sound gradually grows louder.
Decrescendo: the sound gradually grows softer.

Compare amplitude and loudness.

Each example may ask about amplitude or how the sound is heard. Look at the waves, then press the animation that best answers the question.

1 / 4

Which wave has the larger amplitude?

Press the wave that best answers the question.

What did we discover?

Here are the key ideas to remember.

01

Amplitude is the size of a vibration or sound wave.

02

Larger amplitude means greater movement away from the resting position.

03

Larger amplitude usually produces a louder sound; smaller amplitude produces a softer sound.

04

Amplitude can change while frequency—and therefore pitch—stays the same.

05

Amplitude is the physical measurement; loudness is our perception of the sound.

Now you can see and hear amplitude.

You connected the size of a vibration to the way we experience sounds as louder and softer.

amplitudevibration sizeloudersofterfrequencyloudness

Timbre

Timbre is the unique quality or character of a sound.

It is what helps your ears tell one instrument or voice from another—even when they are making the same pitch at a similar volume.

Same note. Similar volume. Different sound.

Same pitch. Different timbre.

Listen to the same C played with four different sound characters.

PITCH sameVOLUME similarTIMBRE different

Press each instrument. What stays the same? What changes?

Sounds have different characters.

Timbre gives a sound its own character. These abstract sounds are not meant to be recognizable instruments—listen only to the quality of each sound.

Press a sound character to hear an example.
These words help us describe timbre. They are not fixed labels—different listeners may describe a sound in different ways.

Which timbre do you hear?

Listen, then choose the instrument you recognize.

1 / 4
Hear the sound, then choose.

Same timbre or different timbre?

Pitch may change. Listen for the character of the sound.

1 / 4
A → B
Hear both sounds, then compare their timbre.

What changed?

Choose whether the example describes a change in pitch, volume, or timbre.

1 / 4

Choose what changed.

What to remember about timbre

Keep these key ideas in mind as you listen to different sounds.

01

Timbre is the unique quality or character of a sound.

02

Different instruments and voices have different timbres.

03

Two sounds can have the same pitch and similar volume but still sound different.

04

Timbre helps us recognize what we are hearing.

05

Words such as airy, rounded, crisp, and deep can help us describe timbre.

Now you can recognize timbre.

You heard how different instruments and voices can have their own recognizable sound—even when pitch and volume stay the same.

timbresound qualitysound characterinstrument recognitionsame pitchdifferent timbre
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