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Study of Influence of Wheel Unloading on Derailment Coefficient of Rolling Stock

철도차량의 윤중 감소가 탈선계수에 미치는 영향 연구

  • Koo, Jeong Seo (Department of Rolling Stock System, Seoul National University of Science and Technology) ;
  • Oh, Hyun Suk (Department of Rolling Stock System, Seoul National University of Science and Technology)
  • 구정서 (서울과학기술대학교 철도차량시스템공학과) ;
  • 오현석 (서울과학기술대학교 철도차량시스템공학과)
  • Received : 2012.06.19
  • Accepted : 2012.09.28
  • Published : 2013.02.04

Abstract

A new theoretical derailment coefficient model of wheel-climb derailment is proposed to consider the influence of wheel unloading. The derailment coefficient model is based on the theoretical derailment model of a wheelset that was developed to predict the derailment induced by train collisions. Presently, in domestic derailment regulations, a derailment coefficient of 0.8 is allowable using Nadal's formula, which is for a flange angle of $60^{\circ}$ and a friction coefficient of 0.3. However, theoretical studies focusing on different flange angles to justify the derailment coefficient of 0.8 have not been conducted. Therefore, this study theoretically explains a derailment coefficient of 0.8 using the proposed derailment coefficient model. Furthermore, wheel unloading of up to 50% is accepted without a clear basis. Accordingly, the correlation between a wheel unloading of 50% and a derailment coefficient of 0.8 is confirmed by using the proposed derailment coefficient model. Finally, the validity of the proposed derailment coefficient model is demonstrated through dynamic simulations.

본 논문에서는 윤중감소를 고려한 이론적 새로운 탈선계수 모델을 제시한다. 본 탈선계수 모델은 열차 충돌 원인 탈선현상을 예측할 수 있는 단일 윤축의 이론적 탈선모델을 바탕으로 도출한다. 현재 국내 탈선규정에서는 플랜지 각이 $60^{\circ}$ 이고 마찰계수가 0.3인 조건을 나달식에 적용하여 탈선계수를 구한 후 안전율을 적용하여 0.8을 규정하고 있으나, 플랜지 각이 변경되면 이론적 설명이 부족하게 된다. 따라서 제시한 탈선계수 이론모델을 이용하여 탈선계수 규정 값 0.8을 이론적으로 접근해본다. 또한 국내탈선규정에서 윤중 감소율을 50%까지 허용하고 있으나 명확한 규정근거를 제시하고 있지 않다. 따라서 윤중 규정 50%감소와 탈선계수 규정 값 0.8과의 상관 관계를 앞서 제시한 탈선계수 이론모델을 이용하여 이론적으로 규명한다. 마지막으로 동역학 시뮬레이션을 이용하여 탈선계수 이론모델의 타당성을 입증한다.

Keywords

References

  1. Korean Ministry of Construction and Transportation, 2007, "Crashworthiness Requirement for Rolling Stock Safety," MOCT Notification NO. 2007-278.
  2. Zeng J. and Wu, P., 2008, "Study on the Wheel/rail Interaction and Derailment Safety," Wear, Vol. 265, No. 9-10, pp. 1452-1459. https://doi.org/10.1016/j.wear.2008.01.031
  3. Yang, Y. B. and Wu, Y. S., 2002, "Dynamic Stability of Trains Moving over Bridges Shaken by Earthquakes," Journal of Sound and Vibration, Vol. 258, No. 1, pp. 65-94. https://doi.org/10.1006/jsvi.2002.5089
  4. Cho, H. J. and Koo, J. S., 2012, "A Numerical Study of the Derailment Caused by Collision of a Rail Vehicle Using a Virtual Testing Model," Vehicle System Dynamics, Vol. 50, No. 1, pp. 79-108. https://doi.org/10.1080/00423114.2011.563860
  5. Koo, J. S. and Choi, S. Y., 2012, "Theoretical Development of a Simplified Wheelset Model to Evaluate Collision-induced Derailments of Rolling Stock," Journal of Sound and Vibration, Vol. 331, No. 13, pp. 3172-3198. https://doi.org/10.1016/j.jsv.2012.02.014
  6. Korean Ministry of Construction and Transportation, 2010, "Regulations Regarding Rolling Stock Safety Standard," Promulgation No. 280,
  7. Profillidis, V. A., 2006, "Railway Management and Engineering(3rd ed.)," Ashgate, Vermont, pp. 283-288.
  8. Shabana, A. A., Zaazaa K. E., Sugiyama H., 2007, "Railroad Vehicle Dynamics," CRC Press, New York, pp. 6-20.
  9. Iwnicki, S., 2006, "Handbook of Railway Vehicle Dynamics," CRC Press, New York, pp. 210-217.
  10. Eum, K. Y., Bae, J. H. and Choi, C. Y., 2011, "Evaluation of Train Running Safety During Construction of Temporary Bridge on Existing Railway," Journal of the Korean Society for Railway, Vol. 14, No. 3, pp. 234-239. https://doi.org/10.7782/JKSR.2011.14.3.234
  11. Functionbay, Recurdyn, www.functionbay.com.

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