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How to determine the annoyance due to the wind turbine

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In the study of annoyance due to wind turbines, the dominant approach takes into account only the noise generated by these sound sources. However, there are studies which show that such value alone is not enough to explain why for the majority of people living near wind turbines their noise is extremely annoying, despite the fact that the measured sound level values are relatively low. One way of solving this problem is to introduce a correction to the one-factor noise index. This has been already done by taking into account the time variability (amplitude modulation) of the sound generated by wind turbines. Another proposal is to establish a multifactorial noise index which includes not only the noise parameters, but also non-acoustic characteristics (mainly visual), which are supposed to influence the overall perception of the annoyance associated with wind turbines. These two approaches will be discussed in this paper.
Rocznik
Strony
art. no. 2022319
Opis fizyczny
Bibliogr. 23 poz.
Twórcy
autor
  • Adam Mickiewicz University, Chair of Acoustics, Faculty of Physics, Uniwersytetu Poznanskiego 2, 61-614 Poznan
  • SINTEF Digital, Trondheim, Norway
Bibliografia
  • 1. M. Basner, C. Clark, A. Hansell, J. Hileman, S. Janssen, K. Shepherd & V. Sparrow; Aviation noise impacts: State of the science; Noise and Health, 2017, 41-50.
  • 2. R. Guski, D. Schreckenberg, R. Schuemer, M. Brink, S. Stansfeld; Comment on Gjestland, T. A Systematic Review of the Basis for WHO's New Recommendation for Limiting Aircraft Noise Annoyance. Int. J. Env. Res. Pub. Health 2018, 15, 2717; Int. J. Env. Res. Pub. Health, 2019, 16(7). DOI:10.3390/ijerph16071088
  • 3. D. Michaud, S. Keith, K. Feder, S. Voicescu, L. Marro, J. Than, M. Guay, T. Bower, A. Denning, E. Lavigne, C. Whelan, S. Janssen, T. Leroux, F. van den Berg; Personal and situational variables associated with wind turbine noise annoyance; J Acoust Soc Am, 2016, 139, 1455-66. https://doi.org/10/1121/1.4942390
  • 4. J. Davy, K. Burgemeister, D. Hillman; Wind turbine sound limits: Current status and recommendations based on mitigating noise annoyance; Applied Acoustics, 2018. 288 - 295. DOI:10.1016/j.apacoust.2018.06.009
  • 5. I. van Kamp, F. van den Berg; Health effects related to wind turbine sound: A review; Proceedings of the Inter-Noise Conference, Washington, DC, USA, Austria, 1-5 August. 2021.
  • 6. ISO/TS 15666; Acoustics - Assessment of noise annoyance by means of social and socio-acoustic surveys, 2021, Geneva, Switzerland: International Standard Organization.
  • 7. Environmental Noise Guidelines for the European Region; World Health Organization, 2018, ISBN 978 92 890 5356 3.
  • 8. A. Freiberg, C. Schefter, J. Hegewald, A. Seidler; The influence of wind turbine visibility on the health of local residents: A systematic review; Int. Arch. Occup Environ Health, 2019, 92, 609-628. DOI:10.1007/s00420-019-01403-w
  • 9. M. Basner, S. McGuire; WHO environmental noise quidelines for the European region: A systematic review on environmental noise and effects on sleep; Int. J. Env. Res. Pub. Health;2018, 15(3), 519. DOI:10.3390/ijerph15030519
  • 10. E. van Kempen, M. Casas, G. Pershagen, M. Foraster; WHO environmental noise guidelines for the European region: a systematic review on environmental noise and cardiovascular and metabolic effects: a summary; Int. J. Env. Res. Pub. Health 2018, 15(2), 379.
  • 11. C. Clark, C. Crumpler, H. Notley; Evidence for environmental noise effects on health for the United Kingdom policy context: A systematic review of the effects of environmental noise on mental health, wellbeing, quality of life, cancer, dementia, birth, reproductive outcomes and cognition; Int. J. Env. Res. Pub. Health, 2020,17:2, 393.
  • 12. S. Yokoyama, S., Sakamoto, H. Tachibana; Study on the amplitude modulation of wind turbine noise; Proceedings of the Inter Noise Conference, Innsbruck, Austria, 15-18 September 2013.
  • 13. S. Lee, K. Kim, W. Choi, S. Lee; Annoyance caused by amplitude modulation of wind turbine noise; Noise Control Eng J, 2011, 38-46.
  • 14. R. Perkins, M. Lotinga, B. Berry, C. Grimwood, S. Stansfeld; A review of research into the human response to amplitude-modulated wind turbine noise and development of a planning control method; Proceedings of the Inter Noise Conference, Hamburg, Germany, 21-24 August 2016.
  • 15. M. Lotinga, T. Lewis; Subjective response to wind turbine noise amplitude modulation; Proceedings of 9th International Conference on Wind Turbine Noise, remote from Europe,18-21 May, 2021.
  • 16. NSW. 2016. NSW Wind Energy Guideline. Sydney, NSW, Australia: NSW Government, Planning and development.
  • 17. C. Baliatsas, I. van Kamp, R. van Poll, J. Yzermans; Health effects from low-frequency noise and infrasound in general population: is it time to listen? A systematic review of observational studies; Sci Total Environment, 2016, 163-9. DOI: 10.1016/j.scitotenv.2016.03.065
  • 18. G. Leventhall; Infrasound and the ear; Proceedings of the 5th int conference on wind turbine noise. Denver, USA, 28-30 August 2013.
  • 19. P. Maijala, A. Turunen, I. Kurki, L. Vainio, S. Pakarinen, C. Kaukinen, K. Lukander, P. Tiittanen, T. Yli-Tuomi, P. Taimisto, T. Lanki, K. Tiippana, J. Virkkala, E. Stickler, M. Sainio; Infrasound Does Not Explain Symptoms Related to Wind Turbines; Helsinki: Statsrådet, Publikasjonsarkivet. 2020, http://julkaisut.valtioneuvosto.fi/handle/100240162329
  • 20. ISO 1996-1 Acoustics- Description, Assessment and Measurement of Environmental Noise - Part 1; 2016, Geneva, Switzerland: International Standardization Organization.
  • 21. T. Van Renterghem, A. Bockstael, V. DeWeirt, D. Botteldooren; Annoyance, detection and recognition of wind turbine noise; Sci. Total Environ. 2013, 456-57, 333-345. https://doi.org/10.1016/j.scitotenv.2013.03.095.
  • 22. T. Gjestland; Background noise levels in Europe; 2008. https://www.easa.europa.eu/sites/default/files/dfu/Background_noise_report. pdf
  • 23. D. Michaud, L. Marro, J. McNamee; Derivation and application of a composite annoyance reaction construct based on multiple wind turbine features; Canadian Journal of Public Health, 2018, 109, 242-251 https://doi.org/10.17269/s41997-018-0040-y
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-3d130f46-f245-498b-ad3e-d0a5d1118214
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