Sound pressure or acoustic pressure is the local pressure deviation from the ambient (average or equilibrium) atmospheric pressure, caused by a sound wave. In air, sound pressure can be measured using a microphone, and in water with a hydrophone. The SI unit of sound pressure is the pascal (Pa).[1]

Quick Facts Characteristic, Particle velocity ...
Sound measurements
Characteristic
Symbols
 Sound pressure p, SPL, LPA
 Particle velocity v, SVL
 Particle displacement δ
 Sound intensity I, SIL
 Sound power P, SWL, LWA
 Sound energy W
 Sound energy density w
 Sound exposure E, SEL
 Acoustic impedance Z
 Audio frequency AF
 Transmission loss TL

Close

Mathematical definition

Thumb
Sound pressure diagram:
  1. Silence
  2. Audible sound
  3. Atmospheric pressure
  4. Sound pressure

A sound wave in a transmission medium causes a deviation (sound pressure, a dynamic pressure) in the local ambient pressure, a static pressure.

Sound pressure, denoted p, is defined by where

  • ptotal is the total pressure,
  • pstat is the static pressure.

Sound measurements

Summarize
Perspective

Sound intensity

In a sound wave, the complementary variable to sound pressure is the particle velocity. Together, they determine the sound intensity of the wave.

Sound intensity, denoted I and measured in W·m−2 in SI units, is defined by where

  • p is the sound pressure,
  • v is the particle velocity.

Acoustic impedance

Acoustic impedance, denoted Z and measured in Pa·m−3·s in SI units, is defined by[2] where

  • is the Laplace transform of sound pressure,[citation needed]
  • is the Laplace transform of sound volume flow rate.

Specific acoustic impedance, denoted z and measured in Pa·m−1·s in SI units, is defined by[2] where

  • is the Laplace transform of sound pressure,
  • is the Laplace transform of particle velocity.

Particle displacement

The particle displacement of a progressive sine wave is given by where

It follows that the particle velocity and the sound pressure along the direction of propagation of the sound wave x are given by where

  • vm is the amplitude of the particle velocity,
  • is the phase shift of the particle velocity,
  • pm is the amplitude of the acoustic pressure,
  • is the phase shift of the acoustic pressure.

Taking the Laplace transforms of v and p with respect to time yields

Since , the amplitude of the specific acoustic impedance is given by

Consequently, the amplitude of the particle displacement is related to that of the acoustic velocity and the sound pressure by

Inverse-proportional law

Summarize
Perspective

When measuring the sound pressure created by a sound source, it is important to measure the distance from the object as well, since the sound pressure of a spherical sound wave decreases as 1/r from the centre of the sphere (and not as 1/r2, like the sound intensity):[3]

This relationship is an inverse-proportional law.

If the sound pressure p1 is measured at a distance r1 from the centre of the sphere, the sound pressure p2 at another position r2 can be calculated:

The inverse-proportional law for sound pressure comes from the inverse-square law for sound intensity: Indeed, where

hence the inverse-proportional law:

Sound pressure level

Summarize
Perspective

Sound pressure level (SPL) or acoustic pressure level (APL) is a logarithmic measure of the effective pressure of a sound relative to a reference value.

Sound pressure level, denoted Lp and measured in dB,[4] is defined by:[5] where

  • p is the root mean square sound pressure,[6]
  • p0 is a reference sound pressure,
  • 1 Np is the neper,
  • 1 B = (1/2 ln 10) Np is the bel,
  • 1 dB = (1/20 ln 10) Np is the decibel.

The commonly used reference sound pressure in air is[7]

p0 = 20 μPa,

which is often considered as the threshold of human hearing (roughly the sound of a mosquito flying 3 m away). The proper notations for sound pressure level using this reference are Lp/(20 μPa) or Lp (re 20 μPa), but the suffix notations dB SPL, dB(SPL), dBSPL, or dBSPL are very common, even if they are not accepted by the SI.[8]

Most sound-level measurements will be made relative to this reference, meaning 1 Pa will equal an SPL of . In other media, such as underwater, a reference level of 1 μPa is used.[9] These references are defined in ANSI S1.1-2013.[10]

The main instrument for measuring sound levels in the environment is the sound level meter. Most sound level meters provide readings in A, C, and Z-weighted decibels and must meet international standards such as IEC 61672-2013.

Examples

The lower limit of audibility is defined as SPL of 0 dB, but the upper limit is not as clearly defined. While 1 atm (194 dB peak or 191 dB SPL)[11][12] is the largest pressure variation an undistorted sound wave can have in Earth's atmosphere (i. e., if the thermodynamic properties of the air are disregarded; in reality, the sound waves become progressively non-linear starting over 150 dB), larger sound waves can be present in other atmospheres or other media, such as underwater or through the Earth.[13]

Thumb
Equal-loudness contour, showing sound-pressure-vs-frequency at different perceived loudness levels

Ears detect changes in sound pressure. Human hearing does not have a flat spectral sensitivity (frequency response) relative to frequency versus amplitude. Humans do not perceive low- and high-frequency sounds as well as they perceive sounds between 3,000 and 4,000 Hz, as shown in the equal-loudness contour. Because the frequency response of human hearing changes with amplitude, three weightings have been established for measuring sound pressure: A, B and C.

In order to distinguish the different sound measures, a suffix is used: A-weighted sound pressure level is written either as dBA or LA. B-weighted sound pressure level is written either as dBB or LB, and C-weighted sound pressure level is written either as dBC or LC. Unweighted sound pressure level is called "linear sound pressure level" and is often written as dBL or just L. Some sound measuring instruments use the letter "Z" as an indication of linear SPL.[13]

Distance

The distance of the measuring microphone from a sound source is often omitted when SPL measurements are quoted, making the data useless, due to the inherent effect of the inverse proportional law. In the case of ambient environmental measurements of "background" noise, distance need not be quoted, as no single source is present, but when measuring the noise level of a specific piece of equipment, the distance should always be stated. A distance of one metre (1 m) from the source is a frequently used standard distance. Because of the effects of reflected noise within a closed room, the use of an anechoic chamber allows sound to be comparable to measurements made in a free field environment.[13]

According to the inverse proportional law, when sound level Lp1 is measured at a distance r1, the sound level Lp2 at the distance r2 is

Multiple sources

The formula for the sum of the sound pressure levels of n incoherent radiating sources is

Inserting the formulas in the formula for the sum of the sound pressure levels yields

Examples of sound pressure

More information Source of sound, Distance ...
Examples of sound pressure in air at standard atmospheric pressure
Source of sound Distance Sound pressure level[a]
(Pa) (dBSPL)
Shock wave (distorted sound waves > 1 atm; waveform valleys are clipped at zero pressure)[11][12] >1.01×105 >191
Simple open-ended thermoacoustic device[14] [clarification needed] 1.26×104 176
1883 eruption of Krakatoa[15][16] 165 km 172
.30-06 rifle being fired 1 m to
shooter's side
7.09×103 171
Firecracker[17] 0.5 m 7.09×103 171
Stun grenade[18] Ambient 1.60×103
...8.00×103
158–172
9-inch (23 cm) party balloon inflated to rupture[19] At ear 4.92×103 168
9-inch (23 cm) diameter balloon crushed to rupture[19] At ear 1.79×103 159
9-inch (23 cm) party balloon inflated to rupture[19] 0.5 m 1.42×103 157
9-inch (23 cm) diameter balloon popped with a pin[19] At ear 1.13×103 155
LRAD 1000Xi Long Range Acoustic Device[20] 1 m 8.93×102 153
9-inch (23 cm) party balloon inflated to rupture[19] 1 m 731 151
Jet engine[13] 1 m 632 150
9-inch (23 cm) diameter balloon crushed to rupture[19] 0.95 m 448 147
9-inch (23 cm) diameter balloon popped with a pin[19] 1 m 282.5 143
Loudest human voice[21] 1 inch 110 135
Trumpet[22] 0.5 m 63.2 130
Vuvuzela horn[23] 1 m 20.0 120
Threshold of pain[24][25][21] At ear 20–200 120–140
Risk of instantaneous noise-induced hearing loss At ear 20.0 120
Jet engine 100–30 m 6.32–200 110–140
Two-stroke chainsaw[26] 1 m 6.32 110
Jackhammer 1 m 2.00 100
Traffic on a busy roadway (combustion engines) 10 m 0.20–0.63 80–90
Hearing damage (over long-term exposure, need not be continuous)[27] At ear 0.36 85
Passenger car (combustion engine) 10 m 0.02–0.20 60–80
Traffic on a busy roadway (electric vehicles) [28] 10 m 0.20–0.63 65-75
EPA-identified maximum to protect against hearing loss and other disruptive effects from noise, such as sleep disturbance, stress, learning detriment, etc.[29] Ambient 0.06 70
TV (set at home level) 1 m 0.02 60
Normal conversation 1 m 2×10−3–0.02 40–60
Passenger car (electric) [30] 10 m 0.02–0.20 38-48
Very calm room Ambient 2.00×10−4
...6.32×10−4
20–30
Light leaf rustling, calm breathing[13] Ambient 6.32×10−5 10
Auditory threshold at 1 kHz[27] At ear 2.00×10−5 0
Anechoic chamber, Orfield Labs, A-weighted[31][32] Ambient 6.80×10−6 −9.4
Anechoic chamber, University of Salford, A-weighted[33] Ambient 4.80×10−6 −12.4
Anechoic chamber, Microsoft, A-weighted[34][35] Ambient 1.90×10−6 −20.35
Close
  1. All values listed are the effective sound pressure unless otherwise stated.

See also

  • Acoustics – Branch of physics involving mechanical waves
  • Phon – Logarithmic unit of loudness level
  • Loudness – Subjective perception of sound pressure
  • Sone – Unit of perceived loudness
  • Sound level meter – Device for acoustic measurements
  • Stevens's power law – Empirical relationship between actual and perceived changed intensity of stimulus
  • Weber–Fechner law – Related laws in the field of psychophysics

References

Wikiwand in your browser!

Seamless Wikipedia browsing. On steroids.

Every time you click a link to Wikipedia, Wiktionary or Wikiquote in your browser's search results, it will show the modern Wikiwand interface.

Wikiwand extension is a five stars, simple, with minimum permission required to keep your browsing private, safe and transparent.