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Environmental Impacts of High-Speed Rail. Part 1: Acoustic Impacts

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Treść / Zawartość
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The article discusses issues related to acoustic impacts generated by high-speed railways. It indicates the most important legal regulations concerning noise in railway transport and characterises the main sources of noise generated by highspeed railway lines. It attempts to determine the negative acoustic impact on various elements of the environment during the construction, operation and decommissioning of a high-speed railways. Furthermore, it also outlines the most frequently applied solutions to minimise this impact.
Rocznik
Tom
Strony
209--216
Opis fizyczny
Bibliogr. 47 poz., rys., tab.
Twórcy
  • Railway Research Institute, Railway Track and Operation Department
Bibliografia
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  • 15. Commission Regulation (EU) No 1304/2014 of 26 November 2014 on the technical specifi cation for interoperability relating to the subsystem ‘rolling stock – noise’ amending Decision 2008/232/ EC and repealing Decision 2011/229/EU (OJ L 2014.356.421), as amended.
  • 16. Regulation of the Minister of Environment of 14 June 2007 on permissible noise levels in the environment (consolidated text of Dz.U. /Journal of Laws/ of 2014.112).
  • 17. PN-EN ISO 3095:2013-12: Acoustics – Railway applications – Measurement of noise emitted by rail bound vehicles.
  • 18. PN-EN 1991-2:2007: Eurocode 1: Actions on structures – Part 2: Traffic loads on Bridges.
  • 19. PN-B-02482:1955: Building foundations. Bearing apacity of piles and pile foundations.
  • 20. PN-EN 1793-1:2017-05: Road traffic noise reducing devices – Test method for determining the acoustic performance – Part 1: Intrinsic characteristics of sound absorption under diffuse sound field conditions.
  • 21. PN-EN 1793-2:2018-08: Road traffic noise reducin g devices – Test method for determining the acoustic performance – Part 2: Intrinsic characteristics of airborne sound insulation under diffuse sound field conditions.
  • 22. PN-EN 1794-1: Road traffic noise reducing devices – Non-acoustic performance – Part 1: Mechanical performance and stability requirements.
  • 23. PN-EN 1794-2: Road traffic noise reducing devices – Non-acoustic performance – Part 2: General safety and environmental requirements.
  • 24. PN-ISO 10847:2002: Acoustics – In-situ determination of insertion loss of outdoor noise barriers of all types.
  • 25. PN-ISO 9613-1:2000: Acoustics. Attenuation of so und during propagation outdoors – Calculation of the absorption of sound by the atmosphere.
  • 26. PN-ISO 9613-2:2002: Acoustics. Attenuation of so und during propagation outdoors. General method of calculation.
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  • 39. Zbieć A.: Aerodynamic Phenomena Caused by the Passage of a Train. Part 1: Pressure Interaction with Objects, Problemy Kolejnictwa [Railway Reports], 2021, vol. 191.
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  • 41. Sheng X. et.al.: Recent advances on research into railway noise, Intelligent Transportation Infrastructure, 2023, vol. 2.
  • 42. Li T. et.al.: Step-by-step numerical prediction of aerodynamic noise gene rated by high speed trains, Chinese Journal of Mechanical Engineering, 2022, vol. 35/28.
  • 43. Liu D. et.al.: A review on aerodynamic load and dynamic behavior of railway noise barriers when highspeed trains pass, Journal of Wind Engineering and Industrial Aerodynamics, 2023, vol. 239, 105458.
  • 44. Talotte C.: Aerodynamic noise: a critical survey, Journal of Sound and Vibration, 1999, no. 231(3),pp. 549–562.
  • 45. Yao Y. et.al.: Analysis of aerodynamic noise characteristics of high-speed train pantograph with different installation bases, Applied Sciences, 2019, no. 9 (2332).
  • 46. Liang X. et.al.: Aerodynamic noise characteristics of high-speed train foremost bogie section, Journal of Central South University, 2020, vol. 27, pp. 1802–1813.
  • 47. Zhang Y., Zhang J., Li T.: Research on aerodynamic noise reduction for high -speed trans, Shock and Vibration, 2016, pp. 1–21.
  • 48. Towpik K.: High-speed railway lines, Problemy Kolejnictwa [Railway Reports], 2010, vol. 151, pp. 28−70.
  • 49. Warsaw City Hall portal, on-line, [accessed 7 March 2024] available at https://mapa.um.warszawa.pl.
  • 50. World Health Organization: Burden of disease from environmental noise. quantification of healthy life years lost in Europe, WHO Regional Office for Europe, Dennmark 2011.
  • 51. Nader M.: Drgania i hałas w transporcie: wybrane zagadnienia, Oficyna Wydawnicza Politechniki Warszawskiej, Warsaw, 2016.
  • 52. Korzeb J.: Predykcja wybranych oddziaływań dynamicznych w strefie wpływu infrastruktury transportowej [Prediction of selected dynamic impacts in the impact zone of transport infrastructure], Prace Naukowe Politechniki Warszawskiej, 2013, vol. 9.
  • 53. Kumar B., Chowdary V.: Railway noise pollution in urban environments: sources, effects, and control strategies, In: Garg N. et.al.: (ed.) Handbook of Vibroacoustics, Noise and Harshness, Springer, Singapore 2023.
  • 54. Zvolenský P. et.al.: Research of noise emission sources in railway transport and effective ways of their reduction, MATEC Web of Conferences,2017, vol. 107, pp. 1–10.
  • 55. Galińska B., Kopania J.: Organizacyjne i techniczne metody redukcji hałasu komunikacyjnego w przestrzeni miejskiej, Autobusy: technika, eksploatacja, systemy transportowe, 2016, nr 6.
  • 56. Tokaj P., Kozioł P.: Railway noise reduction in Europe. In challenges for the market of production, operation and maintenance of rail vehicles, Szkoda M., Ed. Cracow University of Technology, Kraków, 2021, pp. 208–216.
  • 57. Gangwani L., Chainde S., Geete S.: A case study on environmental impact assessment of mumba i-ahadabad high-speed rail corridor, IOP Conference Series: Earth and Environmental Science, 2023,1193, 012022.
  • 58. Hanson C., Ross J., Towers D.: High-Speed Ground Transportation Noise and Vibration Impact Assessment, Report, U.S. Department of Transportation, 2012.
  • 59. Ivanow N.I., Boiko I.S., Shashurin A.E.: The problem of high-speed railway noise prediction and reduction, Procedia Engineering 2017, vol. 189, pp. 539–546.
  • 60. Niu J. et.al.: Aerodynamics of railway train/tunnel system: A review of recent research, Ener gy and Built Environment, 2020, vol1/4.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-0a1c2d52-e188-4051-a543-08cd32fe62b9
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