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Sound Intensity Level00:53

Sound Intensity Level

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Humans perceive sound by hearing. The human ear helps sound waves reach the brain, which then interprets the waves and creates the perception of hearing. The loudness of the environment in which a person is located determines whether they can distinguish between different sound sources.
The human ear can perceive an extensive range of sound intensity, necessitating the use of the logarithmic scale to define a physical quantity—the intensity level. It is a ratio of two intensities and...
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Wind Turbine Machine Models01:24

Wind Turbine Machine Models

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In the growing field of wind energy, incorporating wind turbine models into transient stability analysis is essential. Induction and synchronous machines are the primary models used, with induction machines being prevalent due to their simplicity and reliability.
Induction machines interact through the rotating magnetic field generated by the stator and the rotor. The key parameter is slip, which is the difference between synchronous speed and rotor speed relative to synchronous speed. Slip is...
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Intensity and Pressure of Sound Waves01:05

Intensity and Pressure of Sound Waves

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The intensity of sound waves can be related to displacement and pressure amplitudes by using their wave expressions and the definition of intensity. The critical step to achieve this is to write the power delivered by the particles on the wave as the product of force and velocity and simplify the force per unit area as the pressure. The velocity of the medium's particles can be derived from the displacement.
Unlike the time average of a sinusoidal term, which is zero since it is positive...
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Perception of Sound Waves01:01

Perception of Sound Waves

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The human ear is not equally sensitive to all frequencies in the audible range. It may perceive sound waves with the same pressure but different frequencies as having different loudness. Moreover, the perception of sound waves depends on the health of an individual's ears, which decays with age. The health of one's ears may also be affected by regular exposure to loud noises.
The pitch of a sound depends on the frequency and the pressure amplitude of the source. Two sounds of the same...
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Sound as Pressure Waves01:17

Sound as Pressure Waves

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Sound waves, which are longitudinal waves, can be modeled as the displacement amplitude varying as a function of the spatial and temporal coordinates. As a column of the medium is displaced, its successive columns are also displaced. As the successive displacements differ relatively, a pressure difference with the surrounding pressure is created. The gauge pressure varies across the medium.
The pressure fluctuation depends on the difference in displacements between the successive points in the...
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Sound Waves: Interference00:53

Sound Waves: Interference

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Sound waves can be modeled either as longitudinal waves, wherein the molecules of the medium oscillate around an equilibrium position, or as pressure waves. When two identical waves from the same source superimpose on each other, the combination of two crests or two troughs results in amplitude reinforcement known as constructive interference. If two identical waves, that are initially in phase, become out of phase because of different path lengths, the combination of crests with troughs...
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Related Experiment Video

Updated: Apr 12, 2026

Technique for Studying Arthropod and Microbial Communities within Tree Tissues
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Infrasonic wind noise under a deciduous tree canopy.

Jeremy Webster1, Richard Raspet2

  • 1National Center for Physical Acoustics, Box 1848, University, Mississippi 38677, USA.

The Journal of the Acoustical Society of America
|May 22, 2015
PubMed
Summary

This study predicts infrasonic wind noise under deciduous forests. Leaf presence significantly reduces high-frequency noise, making levels similar to pine forests.

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Area of Science:

  • Acoustics
  • Environmental Science
  • Atmospheric Physics

Background:

  • Infrasonic wind noise in forests is influenced by wind velocity and canopy structure.
  • Previous research predicted infrasonic wind noise in pine forests based on wind data.
  • Understanding forest acoustics is crucial for environmental monitoring and noise pollution studies.

Purpose of the Study:

  • To measure and predict infrasonic wind noise under deciduous forests with and without leaves.
  • To investigate the impact of leaf presence on wind noise spectra.
  • To analyze the contributions of turbulence-shear and turbulence-turbulence interactions to wind noise.

Main Methods:

  • Measurements of infrasonic wind noise and wind velocity spectra within and above deciduous forest canopies.
  • Calculation of turbulence-shear and turbulence-turbulence interaction pressures.
  • Comparison of predicted noise levels with measured data.
  • Simulations of forest effects using meteorological parameters.

Main Results:

  • A low-frequency peak in wind noise spectra was predicted by turbulence-shear interactions above the canopy.
  • High-frequency wind noise was predicted by turbulence-turbulence interactions near the ground.
  • Leaf presence had minimal effect on the low-frequency peak but reduced high-frequency noise by an order of magnitude.
  • Wind noise levels in leafy deciduous forests were comparable to those in pine forests.

Conclusions:

  • Turbulence-turbulence interactions near the ground are dominant in predicting high-frequency wind noise.
  • Leaf presence significantly attenuates high-frequency infrasonic wind noise in forests.
  • Forest canopy structure and leaf presence are critical factors in determining infrasonic wind noise characteristics.