期刊文献+

On aerodynamic noises radiated by the pantograph system of high-speed trains 被引量:39

On aerodynamic noises radiated by the pantograph system of high-speed trains
下载PDF
导出
摘要 Pantograph system of high-speed trains become significant source of aerodynamic noise when travelling speed exceeds 300 km/h. In this paper, a hybrid method of non-linear acoustic solver (NLAS) and Ffowcs Williams-Hawkings (FW-H) acoustic analogy is used to predict the aerodynamic noise of pantograph system in this speed range. When the simulation method is validated by a benchmark problem of flows around a cylinder of finite span, we calculate the near flow field and far acoustic field surrounding the pantograph system. And then, the frequency spectra and acoustic attenuation with distance are analyzed, showing that the pantograph system noise is a typical broadband one with most acoustic power restricted in the medium-high frequency range from 200 Hz to 5 kHz. The aerodynamic noise of pantograph systems radiates outwards in the form of spherical waves in the far field. Analysis of the overall sound pressure level (OASPL) at different speeds exhibits that the acoustic power grows approximately as the 4th power of train speed. The comparison of noise reduction effects for four types of pantograph covers demonstrates that only case 1 can lessen the total noise by about 3 dB as baffles on both sides can shield sound wave in the spanwise direction. The covers produce additional aerodynamic noise themselves in the other three cases and lead to the rise of OASPLs. Pantograph system of high-speed trains become significant source of aerodynamic noise when travelling speed exceeds 300 km/h. In this paper, a hybrid method of non-linear acoustic solver (NLAS) and Ffowcs Williams-Hawkings (FW-H) acoustic analogy is used to predict the aerodynamic noise of pantograph system in this speed range. When the simulation method is validated by a benchmark problem of flows around a cylinder of finite span, we calculate the near flow field and far acoustic field surrounding the pantograph system. And then, the frequency spectra and acoustic attenuation with distance are analyzed, showing that the pantograph system noise is a typical broadband one with most acoustic power restricted in the medium-high frequency range from 200 Hz to 5 kHz. The aerodynamic noise of pantograph systems radiates outwards in the form of spherical waves in the far field. Analysis of the overall sound pressure level (OASPL) at different speeds exhibits that the acoustic power grows approximately as the 4th power of train speed. The comparison of noise reduction effects for four types of pantograph covers demonstrates that only case 1 can lessen the total noise by about 3 dB as baffles on both sides can shield sound wave in the spanwise direction. The covers produce additional aerodynamic noise themselves in the other three cases and lead to the rise of OASPLs.
机构地区 LMFS
出处 《Acta Mechanica Sinica》 SCIE EI CAS CSCD 2013年第3期399-410,共12页 力学学报(英文版)
基金 supported by the National Key Technology R&D Program (2009BAG12A03) Innovation Project of Chinese Academy of Sciences of China (KJCX2-EW-L02-1)
关键词 Aerodynamic noise · NLAS · FW–H acoustic analogy · Pantograph system · High-speed train Aerodynamic noise · NLAS · FW–H acoustic analogy · Pantograph system · High-speed train
  • 相关文献

参考文献2

二级参考文献15

  • 1吴茂松,Mitsuru Ikeda.低噪音受电弓的开发[J].国外机车车辆工艺,1995(5):30-31. 被引量:4
  • 2BARSIKOW B. Experiences with Various Configurations of Microphone Arrays Used to Locate Sound Sources on Railway Trains Operated by the DB AG [J]. Journal of Sound and Vibration, 1996, 193 (1) : 283-293.
  • 3KITAGAWA T, NAGAKURA K. Aerodynamic Noise Generated by Shinkansen Cars [J]. Journal of Sound and Vibration, 2000, 231 (3): 913-924.
  • 4BARSIKOW B, DISK D R, HANSON C E, et al. Noise Characteristics of the Transrapid TR08 Maglev System [R]. Washington: U. S. Department of Transportation, Federal Railroad Administration, USA, 2002.
  • 5TALOTTE C, GAUTIER P E, THOMPSON D J, et al. Identification, Modeling and Reduction Potential of Railway Noise Sources: a Critical Survey [J]. Journal of Sound and Vibration, 2003, 267 (2) : 447-468.
  • 6VAN B A, BEUVING M, DITTRICH M, et al. Work Package 1.2: Rail Source-Task 1.2.1 State of the Art [R]. Paris: Research and Technology Department, Physics of the Railway System and Comfort, FRANCE, 2005.
  • 7NAGAKURA K. Localization of Aerodynamic Noise Sources of Shinkansen Trains[J]. Journal of Sound and Vibration, 2006, 293 (3).. 547-556.
  • 8POISSON F, GAUTIER P E, LETOURNEAUX F. Noise Sources for High Speed Trains: a Review of Results in the TGV Case [C] //Proceedings of the 9th International Workshop on Railway Noise. Munich: Springer, 2007: 71-77.
  • 9WAKABAYASHI Y, KURITA T, YAMADA H, et al. Noise Measurement Results of Shinkansen High-Speed Test Train (FASTECH360S, Z) [C] //Proceedings of the 9th International Workshop on Railway Noise. Munich: Springer, 2007: 63-70.
  • 10KURITA T, WAKABAYASHI Y, YAMADA H, et al. Efforts for Noise Reduction on FASTECH360 High Speed Test Trains [J]. JR EAST Technical Review, 2008, 12 (2): 16-21.

共引文献89

同被引文献330

引证文献39

二级引证文献296

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部