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Sound Insulation Strategy for the Tunnel Noise in a High Speed Train

고속철도차량의 터널 소음을 위한 차음 전략

  • Kim, Seock-Hyun (Department of Mechanical and Mechatronics Engineering, Kangwon National University) ;
  • Lee, Ho-Jin (Department of Mechanical and Mechatronics Engineering, Kangwon National University) ;
  • Kim, Jung-Tae (Department of Mechanical and System Design Engineering, Hongik University)
  • Received : 2012.01.13
  • Accepted : 2012.06.19
  • Published : 2012.08.30

Abstract

In a tunnel, interior noise of a high speed train increases by 5dB~7dB. The reason is that the sound intensity of the acoustic field in the tunnel significantly increases by the reflected waves occurred in the closed space. Especially, the incident acoustic power largely increases on the outside of the compartment side panel and large transmission of noise is available through the side panel and the glass window. In this paper, the sound insulation strategy in the tunnel is proposed for the next generation high speed train under development. Specimens of the aluminum extruded panels, layered panels and double glazed window are manufactured and intensity transmission loss is measured according to ASTM E2249-02. Based on the measured data, problems in the sound insulation performance are diagnosed and the sound insulation strategy is reviewed on each panel and layered structures.

터널 내에서 고속철도 차량의 실내소음은 개활지 대비 5dB~7dB정도 증가한다. 그 원인은 터널 내 차체 외부의 음향 인텐시티가 급격히 증가하기 때문인데, 특히, 측면재의 외부에서는 개활지에 비해서 음향 인텐시티의 증가가 가장 크다. 따라서 터널 내에서는 차체의 측면을 통하여 음향파워의 투과 전달이 커질 가능성이 상당히 높다. 본 논문에서는 현재 개발중인 차세대 고속 철도차량의 터널 내 실내소음을 저감시키기 위한 종합적인 차음 전략을 제시하고자 한다. 이를 위하여 차체의 주요 차음재인 바닥 적층재, 측면 적층재 및 복층 유리창의 시편을 제작하여 ASTM E2249-02에 근거하여 투과손실 측정한다. 측정 데이터에 근거하여 차음 성능상의 문제점을 진단하고, 차음성능 향상을 위한 층별 개선 방안과 적층 구조의 개선 방안을 제시한다.

Keywords

References

  1. http://www.hstrain.re.kr/
  2. D. Song, J. Kim (2010) Development of the Performance and Operation-based Technology of HEMU-400x : Noise Reduction Technology of Interior and Exterior Field (I-2-01), Research Report, KICTEP.
  3. S.H. Choi, C.W. Lee, J.C. Kim, J.H. Cho (2004) Interior Noise of a Korean High Speed Train in Tunnels, Proceedings of ACOUSTICS, Australian Acoustical Society, pp. 415-419.
  4. G. Xie, D.J. Thompson, C.J.C. Jones (2006) A Modeling Approach for the Vibro-acoustic Behavior of Aluminum Extrusions Used in Railway Vehicles, Journal of Sound and Vibration, 293, pp. 921-932. https://doi.org/10.1016/j.jsv.2005.12.015
  5. S.H. Kim, H. Jang, J. Kim (2001) Characteristics of Local Vibration Modes of the Aluminum Extruded Panels for Rail Road Vehicles, Journal of the Korean Society for Railway, 4(3), pp. 87-93.
  6. S.H. Kim, T. Seo, J. Kim, D. Song (2011) Sound Insulation Design of Aluminum Extruded Panel in a Next generation High Speed Train, KSME Transactions-A, 35(5), pp. 567-574.
  7. ASTM E 2249 - 02 : (2003) American Standards for Testing and Materials; Standard Test Method for Laboratory Measurement of Airborne Transmission Loss of Building Partitions and Elements Using Sound Intensity, American Standard Association.
  8. L.L. Beranek, I.L. Ver (1992) Noise and Vibration Control Engineering, John Wiley and Sons, INC.
  9. S.H. Kim, T. Seo, J. Kim (2010) Improvement Effect of the Sound Insulation Performance of the Corrugated Steel Panel by Sound Absorbing and Damping Materials, Journal of the Korean Society for Railway, 13(5), pp. 476-480.
  10. A.J. Price, M.J. Crocker (1970) Sound Transmission Through Double Panels Using Statistical Energy Analysis, Journal of Sound and Vibration, 47(3), pp. 683-693.
  11. J.D. Quirt (1983) Sound Transmission Through Windows II. Double and Triple Glazing, Journal of Acoustical Society of America, 74(2), pp. 534-542. https://doi.org/10.1121/1.389819
  12. A. Brekke (1981) Calculation Methods for the Transmission Loss of Single, Double and Triple Partitions, Applied Acoustics, 14, pp. 225-240. https://doi.org/10.1016/0003-682X(81)90034-7
  13. Frank Fahy (1985) Sound and Structure Vibration, Academic Press London, pp. 167-172.

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