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Assessing safety in wind-exposed installations is crucial to preventing potential failures. This example explores the calculation and design adjustments needed to mount a circular disc on a building facade, where wind forces are a primary concern. A 4-meter diameter disc was initially designed as an aesthetic feature facing winds at a velocity of 25 meters per second, with an air density of 1.25 kilograms per cubic meter. Given these conditions, the drag force on the disc was determined using...
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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.
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Related Experiment Video

Updated: Jan 12, 2026

Measurements of Waves in a Wind-wave Tank Under Steady and Time-varying Wind Forcing
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Measurements of Waves in a Wind-wave Tank Under Steady and Time-varying Wind Forcing

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Wind turbine audibility calculations inside dwellings.

Stephen E Keith1, David S Michaud1, Katya P Feder1

  • 1Health Canada, Environmental and Radiation Health Sciences Directorate, Consumer & Clinical, Radiation Protection Bureau, 775 Brookfield Road, Ottawa, Ontario K1A 1C1, Canada.

The Journal of the Acoustical Society of America
|May 4, 2019
PubMed
Summary

Indoor wind turbine noise is audible, especially with open windows. Even at low outdoor sound pressure levels (SPLs), wind turbine noise can be heard inside homes, particularly by younger adults.

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Area of Science:

  • Acoustics
  • Environmental Science
  • Building Physics

Background:

  • Wind turbines generate low-frequency noise that can propagate indoors.
  • Assessing indoor audibility is crucial for understanding human exposure and potential annoyance.

Purpose of the Study:

  • To quantify indoor sound pressure levels (SPLs) from wind turbines.
  • To evaluate the audibility of wind turbine noise indoors under various conditions.
  • To investigate the influence of window status and frequency spectra on indoor noise levels.

Main Methods:

  • Used loudspeaker-generated noise to simulate wind turbine spectra at 11 dwellings.
  • Applied ISO 140-5:1998 standards for outdoor-to-indoor sound level difference measurements.
  • Extended measurements to low frequencies, including 16 Hz, and considered A- and C-weighted SPLs.

Main Results:

  • Indoor broadband A- and C-weighted SPLs were reduced by 25.9 and 15.3 dB with windows closed, and 13.8 and 9.9 dB with windows open.
  • High correlation observed between indoor and outdoor SPLs (standard deviation of 3 dB).
  • At 35 dBA outdoor SPL, wind turbine noise was potentially audible indoors as low as 31.5 Hz, with 80-100% of adults under 60 hearing it with open windows.

Conclusions:

  • Wind turbine noise can be audible indoors, particularly with open windows.
  • Low-frequency noise audibility is significant, impacting a large percentage of the population.
  • Further research is needed to address uncertainties in audibility estimates.