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Measuring sound intensity in decibel, dB 0 log 10 I I 2 12 0 W/m 10 I Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of a normal ear at about optimal frequency 10 / log 0 I I 10 / 0 10 I I

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Page 1: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

Measuring sound intensity in decibel, dB

0

log10I

I212

0 W/m10I

Number of dB, decibel, dimensionless parameter

- reference value, corresponding to threshold of sensitivity of a normal ear at about optimal frequency

10/log0

I

I 10/0 10

II

Page 2: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

Measuring sound intensity in decibel, dB

0

log10I

I

2120 W/m10I

Number of dB, decibel, dimensionless parameter

- reference value, corresponding to threshold of sensitivity of a normal ear at about optimal frequency

An example: TV is turned down from 75 dB to 60 dB.How does its sound intensity change?

From 2525.7125.701 W/m101.3W/m101010 II

To 262612602 W/m10W/m101010 II

Goes down by a factor of 3110 5.1 In general: sound level is going up/down by x dB -

sound intensity is multiplied by 10/10 x

10/0 10

II

10/10/10/0 10)(1010)( xx IIxI

Page 3: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

Reflection of a wave on string.

Full or partial reflection always occurs at a boundary the wave cannot crossFor example, with a medium, which does not support the waves of that kind.

Reflection depends a lot on the boundary conditions: a clamped string vs. a freely sliding string.

Page 4: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

Reflection of a wave on string.

A partial reflection always occurs if properties of the medium change abruptly.Abruptly compared to what?

Examples: reflection of sound off a rock, light off a glass window

2222

2

1

2

1AFvAP

F

v

1222

21 // AA

Two connected strings. What is different between them, F ? ?How do the wave speeds in them compare? What about the amplitudes?

Page 5: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

Refraction of waver waves…Refraction – change in the direction of wave propagation at a boundary.

Waves change direction, or refract, as they enter shallow water, because the waves slow down.

Page 6: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

Reflection of a wave on string.

Full or partial reflection always occurs at a boundary the wave cannot crossFor example, with a medium, which does not support the waves of that kind.

Reflection depends a lot on the boundary conditions: a clamped string vs. a freely sliding string.

Page 7: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

Reflection of a wave on string.

A partial reflection always occurs if properties of the medium change abruptly.Abruptly compared to what?

Examples: reflection of sound off a rock, light off a glass window…

Two connected strings. What is different between them, F ? ?How do the wave speed in them compare? What about the amplitudes?

2222

2

1

2

1AFvAP

F

v

Page 8: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

Refraction of waver waves…Refraction – change in the direction of wave propagation at a boundary.

Waves change direction, or refract, as they enter shallow water, because the waves slow down.

Page 9: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

Two waves of the same frequencies and wavelengths propagating in opposite directions interfere to make a composite standing wave.

Unlike the two interfering propagating waves, the standing wave does not seem to go anywhere, just like an oscillation…

But it has all the essential properties of the waves:spatial structure, wavelength, wave number.

It also has amplitude and frequency just as the oscillations do.

Page 10: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

A longitudinal standing wave:

Page 11: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

How do you create a standing wave?

Make a traveling wave interfere with its reflection off some boundary!

There are some points, nodes, N, where the string does not move at all.

There are other points, antinodes, A, where the oscillations have the maximum amplitude.

How far apart are those nodes and antinodes?

Page 12: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

We normally consider standing waves in a confined space, like on string clamped on both sides.

It imposes some boundary conditions, which have to be matched by all standing waves, which are “allowed”.

Page 13: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

A propagating wave on a string can have any frequency/length.

In contrast, stable standing waves on a string can only have some discrete, well defined wavelengths and frequencies.

How many different wavelengths are allowed? What is the smallest/largest one?

v

f

Page 14: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

Some math:largest wavelength / lowest frequency

L2

L

vfL

2,2

Higher harmonics, wavelengths:

LLL 2

4,2

3,2

2

Higher harmonics, frequencies:

mm

LLm m

m 12,

2

11

1

2mfm

L

vm

vf

mm

Page 15: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

Some math:largest wavelength / lowest frequency

L

vf

21

1mffm

Fundamental mode

Higher harmonics

Page 16: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

More math:interference

)cos(1 tkxAy

)cos(2 tkxAy Composite wave:

tkxA

yyy

sinsin221

Importantly, unlike a propagating wave, where kx and t appear in the argument of one sin (or cos), in a standing wave they are separated between two sin functions.

Page 17: Measuring sound intensity in decibel, dB Number of dB, decibel, dimensionless parameter - reference value, corresponding to threshold of sensitivity of

Standing waves in 2D systems: