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Standing Waves Time to read Chapter 3 of Berg & Stork.

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Standing Standing Waves Waves Time to read Chapter Time to read Chapter 3 of Berg & Stork 3 of Berg & Stork
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Page 1: Standing Waves Time to read Chapter 3 of Berg & Stork.

Standing WavesStanding WavesTime to read Chapter 3 of Time to read Chapter 3 of

Berg & StorkBerg & Stork

Page 2: Standing Waves Time to read Chapter 3 of Berg & Stork.

String with ends fixedString with ends fixed

String is stretched = tensionString is stretched = tension

string wants to return to string wants to return to normal length …normal length …

Page 3: Standing Waves Time to read Chapter 3 of Berg & Stork.

String with ends fixedString with ends fixed

String is stretched = tensionString is stretched = tension

… … but it overshoots and but it overshoots and keeps oscillatingkeeps oscillating

Page 4: Standing Waves Time to read Chapter 3 of Berg & Stork.

fundamentalfundamental

22ndnd harmonic harmonic

33rdrd harmonic harmonic

44thth harmonic harmonic

Different vibration modesDifferent vibration modes

Animation courtesy of Dr. Dan Russell, Kettering UniversityAnimation courtesy of Dr. Dan Russell, Kettering University

Page 5: Standing Waves Time to read Chapter 3 of Berg & Stork.

Standing waves are a superposition of Standing waves are a superposition of two counter moving wavestwo counter moving waves

Animation courtesy of Dr. Dan Russell, Kettering UniversityAnimation courtesy of Dr. Dan Russell, Kettering University

Page 6: Standing Waves Time to read Chapter 3 of Berg & Stork.

vv vv

T/2 = T/2 = /(2v)/(2v)

f = v/f = v/

speed of the wave on speed of the wave on the string, NOT the the string, NOT the

speed of soundspeed of sound

Page 7: Standing Waves Time to read Chapter 3 of Berg & Stork.

11 = 2 L = 2 L

ff11 = v/ = v/ = v/(2L) = v/(2L)

22 = L = L

ff22 = v/ = v/ = v/L=2 f = v/L=2 f11……

LL

Page 8: Standing Waves Time to read Chapter 3 of Berg & Stork.
Page 9: Standing Waves Time to read Chapter 3 of Berg & Stork.

If the initial position of the string is one the the If the initial position of the string is one the the vibration modes, only that mode will be vibration modes, only that mode will be

“excited”“excited”

In general, the initial shape of the string will be a In general, the initial shape of the string will be a superposition of many modes. Each one will be superposition of many modes. Each one will be excited and evolve in time separately with their excited and evolve in time separately with their

own frequency.own frequency.

Different initial conditions will produce a Different initial conditions will produce a different timbre.different timbre.

http://www.falstad.com/loadedstring/http://www.falstad.com/loadedstring/

Page 10: Standing Waves Time to read Chapter 3 of Berg & Stork.

Mersenne’s lawsMersenne’s laws

1

1

2 2

v Ff

L W L

fundamental fundamental frequencyfrequency

tensiontension mass per mass per lengthlength

lengthlength

Page 11: Standing Waves Time to read Chapter 3 of Berg & Stork.

In other words …In other words …

1.1. Frequency is inversely proportional to lengthFrequency is inversely proportional to length

2.2. Frequency is proportional to square root of Frequency is proportional to square root of tensiontension

3.3. Frequency is inversely proportional to square Frequency is inversely proportional to square root of the string densityroot of the string density

Page 12: Standing Waves Time to read Chapter 3 of Berg & Stork.

Vibration modes of membranesVibration modes of membranes

two two integersintegers

Page 13: Standing Waves Time to read Chapter 3 of Berg & Stork.

You can also watch it on YouTube

http://www.youtube.com/watch?v=Zkox6niJ1Wc

Page 14: Standing Waves Time to read Chapter 3 of Berg & Stork.

For a circular membraneFor a circular membrane

Page 15: Standing Waves Time to read Chapter 3 of Berg & Stork.

Great visualization (with sound !) of Great visualization (with sound !) of membranes vibration modesmembranes vibration modes

http://www.falstad.com/membrane/j2/http://www.falstad.com/membrane/j2/

Page 16: Standing Waves Time to read Chapter 3 of Berg & Stork.

Vibration modes of a bottle of beerVibration modes of a bottle of beer

fundamental modefundamental mode

Page 17: Standing Waves Time to read Chapter 3 of Berg & Stork.
Page 18: Standing Waves Time to read Chapter 3 of Berg & Stork.

http://www.kettering.edu/~drussell/Demos.htmlhttp://www.kettering.edu/~drussell/Demos.html

Page 19: Standing Waves Time to read Chapter 3 of Berg & Stork.

Fourier amplitudes of an empty beer bottle struck at the neckFourier amplitudes of an empty beer bottle struck at the neck

Page 20: Standing Waves Time to read Chapter 3 of Berg & Stork.

ResonanceResonance

forceforce

Pushes at the natural frequency of the swing Pushes at the natural frequency of the swing increase the oscillation amplitudeincrease the oscillation amplitude

Page 21: Standing Waves Time to read Chapter 3 of Berg & Stork.

For a resonance to occur the driving For a resonance to occur the driving force needs to have a frequency very force needs to have a frequency very

close to one of the natural close to one of the natural frequencies of the resonating object.frequencies of the resonating object.

It also helps if that mode has little It also helps if that mode has little damping.damping.

Page 22: Standing Waves Time to read Chapter 3 of Berg & Stork.
Page 23: Standing Waves Time to read Chapter 3 of Berg & Stork.

Sound can play the role of a periodic force that can Sound can play the role of a periodic force that can excite a particular vibration mode excite a particular vibration mode if the frequencies if the frequencies

matchmatch

Page 24: Standing Waves Time to read Chapter 3 of Berg & Stork.

Playing one note on the piano (C,E,F,G) Playing one note on the piano (C,E,F,G) makes the C3 “sing”makes the C3 “sing”

Page 25: Standing Waves Time to read Chapter 3 of Berg & Stork.

Sympathetic string is Sympathetic string is not touched by the not touched by the

player but it resonates player but it resonates with the other stringswith the other strings

hardingfelehardingfele

Page 26: Standing Waves Time to read Chapter 3 of Berg & Stork.
Page 27: Standing Waves Time to read Chapter 3 of Berg & Stork.

Resonance curveResonance curve

responseresponseat a given at a given frequencyfrequency

violinviolin loudspeakerloudspeaker

Page 28: Standing Waves Time to read Chapter 3 of Berg & Stork.

Typical loudspeaker response in a roomTypical loudspeaker response in a room

valleys and valleys and peaks resulting peaks resulting from interaction from interaction

with walls, with walls, furniture, …furniture, …

Page 29: Standing Waves Time to read Chapter 3 of Berg & Stork.

Examples of resonance:Examples of resonance:

• radio receiver (selects one frequency out of many radio receiver (selects one frequency out of many through resonant circuit)through resonant circuit)

• buildings and earthquakes, bridges and wind flutterbuildings and earthquakes, bridges and wind flutter

• child on a swingchild on a swing

• voice and musical instruments (formants)voice and musical instruments (formants)

• many phenomena in the emission and absorption of many phenomena in the emission and absorption of lightlight

• … …

Page 30: Standing Waves Time to read Chapter 3 of Berg & Stork.

Resonant interaction with Saturn’s moons Resonant interaction with Saturn’s moons destabilizes some of the orbits in the ringdestabilizes some of the orbits in the ring

Page 31: Standing Waves Time to read Chapter 3 of Berg & Stork.
Page 32: Standing Waves Time to read Chapter 3 of Berg & Stork.

This is not a This is not a string now, string now,

it’s the graph it’s the graph of the pressure of the pressure

x distancex distance

Standing sound waves in air tubesStanding sound waves in air tubes

Page 33: Standing Waves Time to read Chapter 3 of Berg & Stork.

vvstring string v vsoundsound

nodes at nodes at the endsthe ends

nodes or nodes or antinodes at antinodes at

the endsthe ends

air tubes x stringsair tubes x strings

Page 34: Standing Waves Time to read Chapter 3 of Berg & Stork.

closed endclosed end open endopen end

pressurepressure

displacementdisplacement

Page 35: Standing Waves Time to read Chapter 3 of Berg & Stork.

/4/4

Page 36: Standing Waves Time to read Chapter 3 of Berg & Stork.

1.5 7( )4

4 1.50.86

7

344 /400

0.86

L m

mm

v f

v m sf Hz

m

Example: closed-open tube, N=7Example: closed-open tube, N=7


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