Identyfikatory
Warianty tytułu
Języki publikacji
Abstrakty
The aim of the research was to determine the occurrence of possible, significant levels of infrasound and low frequency noise both in classrooms and around the primary school. Two sources of noise during research were significant: traffic on the national road and a wind farm, located near the school building. So far, few studies have been published regarding the impact of low-frequency, environmental noise from communication routes. The identification of hazards in a form of estimated noise levels resulted in preliminary information whether the location of the school near the road with significant traffic and the nearby wind farm can cause nuisance to children. There have been determined the criteria for assessing infrasound and low frequency noise. There have been made third octave band analyses of noise spectrum and the essential noise indicators were calculated. The results of learning in that school were thoroughly analysed for a long period of time and they were compared to the results obtained in other schools within a radius of 200 km situated near similar noise sources. Chosen assessment criteria show small exposure to low frequency noise. Measured infrasound noise levels are below hearing threshold.
Wydawca
Czasopismo
Rocznik
Tom
Strony
93--102
Opis fizyczny
Bibliogr. 41 poz., fot., rys., tab., wykr.
Twórcy
autor
- Koszalin University of Technology, Faculty of Civil Engineering, Environmental and Geodetic Sciences, Śniadeckich 2, 75-453 Koszalin, Poland
autor
- Koszalin University of Technology, Faculty of Civil Engineering, Environmental and Geodetic Sciences, Śniadeckich 2, 75-453 Koszalin, Poland
Bibliografia
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- 4. Bullmore A., Adcock J., Jiggins M., Cand M. (2009), Wind farm noise predictions and comparison with measurements, Proceedings of Third International Meeting on Wind Turbine Noise, Aalborg, Denmark.
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- 6. DIN 45680: 2013, Measurement and assessment of low-frequency noise immissions in the neighbourhood, Berlin, Deutches Institut für Normung.
- 7. Eze I. C. et al. (2018), Transportation noise exposure, noise annoyance and respiratory health in adults: A repeated-measures study, Environment International, 121: 741-750, doi: 10.1016/j.envint.2018.10.006.
- 8. Herrmann L. et al. (2016), Low-frequency noise incl. infrasound from wind turbines and other sources, Proceedings of Inter-Noise 2016, pp. 5786-5795, Hamburg, Germany.
- 9. Holmberg K., Landstrom U., Kjellberg A. (1997), Low frequency noise level variations and annoyance in working environments, Journal of Low Frequency Noise, Vibration and Active Control, 16 (2): 81-88, doi: 10.1177/026309239701600202.
- 10. Hygiene norm HN 30:2016, Infrasound and low frequency sounds: Limit values for residential and public buildings, Minister of Health of the Republic of Lithuania.
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- 13. ISO 7196:1995 (1995), Acoustics – Frequency weighting characteristic for infrasound measurements, International Organization for Standardization, Geneva.
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- 15. Kaczmarska A., Łuczak A. (2008), Analysis of annoyance caused by infrasound and low-frequency noise during mental work, Archives of Acoustics, 33 (3): 331-340.
- 16. Kjellberg A., Tesarz M., Holmberg K., Landström U. (1997), Evaluation of frequency-weighted sound level measurements for prediction of low-frequency noise annoyance, Environment International, 23: 519-527, doi: 10.1016/S0160-4120(97)00054-8.
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- 18. Leventhall G. (2007), What is infrasound?, Progress in Biophysics & Molecular Biology, 93 (1-3): 130-137, doi: 10.1016/j.pbiomolbio.2006.07.006.
- 19. Lundquist P. (2003), Classroom noise – Exposure and subjective response among pupils, Umeå University, Sweden.
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- 25. Pawlaczyk-Łuszczyńska M., Dudarewicz A., Śliwińska-Kowalska M. (2007), Proposals of exposure criteria for the assessment of low frequency noise at workplaces in industrial control rooms and office-like areas, Archives of Acoustics, 32 (2): 303-312.
- 26. Pawlaczyk-Łuszczyńska M., Szymczak W., Dudarewicz A., Śliwińska-Kowalska M. (2006), Proposed criteria for assessing low frequency noise annoyance in occupational settings, International Journal of Occupational Medicine and Environmental Health, 19 (3): 185-197.
- 27. Pawlas K., Pawlas N., Boroń M., Szłapa P., Zachara J. (2013), Infrasound and low frequency noise assessment at workplaces and environment – review of criteria, Environmental Medicine, 16 (1): 82-89.
- 28. Pedersen E., van den Berg F., Bakker R., Bouma J. (2010), Can road traffic mask sound from wind turbines? Response to wind turbine sound at different levels of road traffic sound, Energy Policy, 38 (5): 2520-2527, doi: 10.1016/j.enpol.2010.01.001.
- 29. Pirrera S., de Valck E., Cluydts R. (2010), Nocturnal road traffic noise: a review on its assessment and consequences on sleep and health, Environment International, 36 (5): 492-498, doi: 10.1016/j.envint.2010.03.007.
- 30. Roswall N. et al. (2017), Residential exposure to traffic noise and leisure-time sports – A population-based study, International Journal of Hygiene and Environmental Health, 220 (6): 1006-1013, doi: 10.1016/j.ijheh.2017.05.010.
- 31. Schultz Christensen J., Hjortebjerg D., Raaschou-Nielsen O., Ketzel M., Sørensen T. I. A., Sørensen M. (2016), Pregnancy and childhood exposure to residential traffic noise and overweight at 7 years of age, Environment International, 94: 170-176, doi: 10.1016/j.envint.2016.05.016.
- 32. Seetha P., Karuppiah K., Ismail M. Y., Sapuan S., Ismail N., Moli T. (2008), Effects to teaching environment of noise level in school classrooms, Journal of Scientific and Industrial Research, 67 (9): 659-664.
- 33. Shehap A. M., Shawky H. A., El-Basheer T. M. (2016), Study and assessment of low frequency noise in occupational settings, Archives of Acoustics, 41 (1): 151-160, doi: 10.1515/aoa-2016-0015.
- 34. Shield B., Dockrell J. (2008), The effects of environmental and classroom noise on the academic attainments of primary school children, Journal of the Acoustical Society of America, 123: 133-144, doi: 10.1121/1.2812596.
- 35. Thiesse L. et al. (2018), Adverse impact of nocturnal transportation noise on glucose regulation in healthy young adults: Effect of different noise scenarios, Environment International, 121: 1011-1023, doi: 10.1016/j.envint.2018.05.036.
- 36. Wszołek T., Kłaczyński M. (2014), Problems in measurements of noise indicators for wind turbines in Poland, Proceedings of Forum Acusticum, Cracow, Poland.
- 37. Wu S., Peng J., Bi Z. (2014), Chinese speech intelligibility in low frequency reverberation and noise in a simulated classroom, Acta Acustica united with Acustica, 100: 1067-1072, doi: 10.3813/AAA.918786.
- 38. Xie H., Kang J., Tompsett R. (2011), The impacts of environmental noise on the academic achievements of secondary school students in Greater London, Applied Acoustics, 72: 551-555, doi: 10.1016/j.apacoust.2010.10.013.
- 39. Zagubień A. (2016), Non-occupational exposure to low frequency noise – the analysis on the basis of chosen mean of transport [in Polish: Pozazawodowe narażenie na hałas niskoczęstotliwościowy – analiza na podstawie wybranego środka transportu], Rocznik Ochrona Środowiska, 18: 626-641.
- 40. Zagubień A., Ingielewicz R. (2017), The analysis of similarity of calculation results and local measurements of wind farm noise, Measurement, 106: 211-220, doi: 10.1016/j.measurement.2017.03.041.
- 41. Zagubień A., Wolniewicz K. (2016), Everyday exposure to occupational/non-occupational infrasound noise in our life, Archives of Acoustics, 41 (4): 659-668, doi: 10.1515/aoa-2016-0063.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-b0d76ca3-5f9b-4f8a-8890-6179280fc7f3