基于可靠度理论的桥上列车横风安全性分析

张田1,2,张楠3,王少钦4,夏禾3

振动与冲击 ›› 2019, Vol. 38 ›› Issue (17) : 226-231.

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振动与冲击 ›› 2019, Vol. 38 ›› Issue (17) : 226-231.
论文

基于可靠度理论的桥上列车横风安全性分析

  • 张田1,2,张楠3,王少钦4,夏禾3
作者信息 +

Crosswind safety analysis for atrain running on abridge based on reliability theory

  • ZHANG Tian1,2, ZHANG Nan3, WANG Shaoqin4, XIA He3
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文章历史 +

摘要

基于可靠度理论,分析风荷载作用下高速列车在桥上的运行安全性,利用失效概率来评价桥上列车横风安全性。首先由风洞试验获得的列车和桥梁的气动力系数,计算列车和桥上的气动力,然后建立风荷载作用下车桥耦合系统分析模型,计算不同平均风速下高速列车以不同车速在桥上运行时的安全性评价指标,最后基于可靠度理论计算高速列车桥上运行的失效概率。以兰新铁路第二双线上的十跨简支槽型梁桥为例,分析横风作用下高速列车桥上运行时的失效概率,并与确定性分析方法比较,结果表明:随着列车运行速度和平均风速的增加,车桥系统的失效概率增加;相同车速及平均风速时,拖车比动车的失效概率大;采用确定性方法获得的列车特征风曲线,对动车其大致与失效概率10%的列车概率特征风曲线相当,对拖车则对应着更低的失效概率。

Abstract

Based on the theory of reliability, the running safety of a high-speed train on a bridge under wind loadswas analyzed, and the failure probability was used to evaluate the crosswind safety of the train on the bridge.Firstly,aerodynamic coefficients of the train and bridge obtained withwind tunnel testswereused to calculate aerodynamic forces acting on the train and the bridge.Then, the analysis model for the train-bridge coupled system under wind loadswas established, and safety evaluation indices for the train running on the bridgeat different velocitieswere calculated under different average wind speeds.Finally, the failure probability of the high speed train running on the bridgewas calculated based on the reliability theory.A 10-span simply-supported U-shape girder bridge of Lanxin Railway was taken as an example to analyze the failure probability of the high speed train running on the bridge under crosswind.The results were compared with those using the deterministic analysis method.The results showed that with increase in train running velocity and average wind speed, the failure probability of the train-bridge coupled system increases; failure probability of trail-car is larger than that of motor-car at the same train running velocity and average wind speed;the train characteristic wind curve for motor-carobtained with the deterministic methodis roughly equivalent to theprobabilistic characteristic wind curve of the train with failure probability of 0.1, whilethat for trail-car is corresponding to one with lower failure probability.

关键词

桥梁工程 / 高速列车 / 行车安全性 / 可靠度理论 / 风荷载 / 失效概率

Key words

 bridge engineering / high-speed train / running safety / reliability theory / wind load / failure probability

引用本文

导出引用
张田1,2,张楠3,王少钦4,夏禾3. 基于可靠度理论的桥上列车横风安全性分析[J]. 振动与冲击, 2019, 38(17): 226-231
ZHANG Tian1,2, ZHANG Nan3, WANG Shaoqin4, XIA He3. Crosswind safety analysis for atrain running on abridge based on reliability theory[J]. Journal of Vibration and Shock, 2019, 38(17): 226-231

参考文献

[1] HE Xuhui, WU Teng, ZOU Yunfeng, et al. Recent Developments of High-speed Railway Bridges in China [J]. Structure and Infrastructure Engineering, 2017, 3:1-12.
[2] 钱征宇. 西北地区铁路大风灾害及其防治对策[J].中国铁路, 2009,3: 1-4转14.
QIAN Zhengyu. Strong Wind Disaster and Control Countermeasure for Northwest China Railways [J]. Chinese Railways, 2009,3: 1-4 to 14.
[3] 刘庆宽, 杜彦良, 乔富贵. 日本列车横风和强风对策研究[J]. 铁道学报, 2008, 30(1): 82-88.
LIU Qingkuan, DU Yanliang, QIAO Fu-gui. Train Crosswind and Strong Wind Countermeasure Research in Japan [J]. Journal of the China Railway Society, 2008, 30(1): 82-88.
[4] GIAPPINO S, ROCCHI D, SCHITO P, et al. Cross Wind and Rollover Risk on Lightweight Railway Vehicles [J]. Journal of Wind Engineering and Industrial Aerodynamics, 2016, 153: 106-112.
[5] 高广军. 强侧风作用下列车运行安全性研究[D]. 长沙: 中南大学, 2008.
GAO Guangjun. Research on Train Operation Safety under Strong Side Wind [D]. Changsha: Central South University, 2008.
[6] 张在中, 周丹. 不同头部外形高速列车气动性能风洞试验研究 [J]. 中南大学学报(自然科学版), 2013, 44(6): 2603-2608.
ZHANG Zaizhong, ZHOU Dan. Wind Tunnel Experiment on Aerodynamic Characteristic of Streamline Head of High Speed Train with Different Head Shapes [J]. Journal of Central South University (Science and Technology), 2013, 44(6): 2603-2608.
[7] 于梦阁. 基于可靠性的高速列车风致安全研究[D]. 成都: 西南交通大学, 2014.
YU Mengge. Study on the Wind-induced Safety for the High-speed Train Based on the Reliability [D]. Chengdu: Southwest Jiaotong University, 2014.
[8] THOMAS D. On Rail Vehicle Dynamics in Unsteady Crosswind Conditions [D]. Stockholm: Royal Institute of Technology, 2013.
[9] Directive 2008/232/CE. Technical Specification for Interoperability Relating to the ‘Rolling Stock’ Sub-system of the Trans-European High-speed Rail System [S].
[10] HOPPMANNA U, KOENIGA S, TIELKESB T, et al. A Short-term Strong Wind Prediction Model for Railway Application: Design and Verification [J]. Journal of Wind Engineering and Industrial Aerodynamics, 2002, 90:1127-1134.
[11] BURLANDO M, FREDA A, RATTO C F, et al. A Pilot Study of the Wind Speed along the Rome–Naples HS/HC Railway Line. Part 1-Numerical Modeling and Wind Simulations [J]. Journal of Wind Engineering and Industrial Aerodynamics, 2010, 98:392–403.
[12] 马淑红, 马韫娟, 程先东, 等. 我国高速铁路沿线强风区间的确定方法及风险评估[J]. 铁道工程学报, 2011, 3: 37-45.
MA Shuhong, MA Yunjuan, CHENG Xiandong, et al. Determining Method and Risk Assessment of Strong Wind Region along High-speed Railway in China [J]. Journal of Railway Engineering Society, 2011, 3:37-45.
[13] KATSUHIRO K, MINORU S. Study of Aerodynamic Coefficients Used to Estimate Critical Wind Speed for Vehicle Overturning [J]. Journal of Wind Engineering and Industrial Aerodynamics, 2015, 147: 1-17.
[14] CHELI F, CORRADI R, TOMASINI G. Crosswind Action on Rail Vehicles: A Methodology for the Estimation of the Characteristic Wind Curves [J]. Journal of Wind Engineering and Industrial Aerodynamics, 2012, 104-106: 248-255.
[15] BAKER C J. The Simulation of Unsteady Aerodynamic Cross Wind Forces on Trains [J]. Journal of Wind Engineering and Industrial Aerodynamics, 2010, 98: 88-99.
[16] SIMA M, EICHINGER S, BLANCO A, et al. Computational Fluid Dynamics Simulation of Rail Vehicles in Crosswind: Application in Norms and Standards [J]. Proceedings of the Institution of Mechanical Engineers, Part F: Journal of Rail and Rapid Transit, 2015, 229(6): 635-643.
[17] 杨国伟, 魏宇杰, 赵桂林, 等. 高速列车的关键力学问题 [J]. 力学进展, 2015, 45(7): 207-460.
YANG Guowei, WEI Yujie, ZHAO Guilin, et al. Research Progress on the Mechanics of High Speed Rails [J]. Advances in Mechanics, 2015, 45(7): 207-460.
[18] ANDERSSON E, HAGGSTROM J, SIMA M, et al. Assessment of Train-overturning Risk due to Strong Cross-Winds [J]. Proceedings of the Institution of Mechanical Engineers, Part F: Journal of Rail and Rapid Transit, 2004, 218: 213-223.
[19] XIAO Xinbiao, LING Liang, XIONG Jiayang, et al. Study on the Safety of Operating High-speed Railway Vehicles Subjected to Crosswinds [J]. Journal of Zhejiang University-SCIENCE A (Applied Physics & Engineering), 2014, 9: 694-710.
[20] PROPPE C, WETZEL C. A Probabilistic Approach for Assessing the Crosswind Stability of Ground Vehicles [J]. Vehicle System Dynamics: International Journal of Vehicle Mechanics and Mobility, 2010, 48(S1): 411-428.
[21] BAKER C J. A Framework for the Consideration of the Effects of Crosswinds on Trains [J]. Journal of Wind Engineering and Industrial Aerodynamics, 2013, 123: 130-142.
[22] CARRARINI A. Reliability Based Analysis of the Crosswind Stability of Railway Vehicles [J]. Journal of Wind Engineering and Industrial Aerodynamics, 2007, 95: 493-509.
[23] 夏禾, 张楠. 车辆与结构动力相互作用[M]. 第2版. 北京: 科学出版社, 2005.
XIA He, ZHANG Nan. Dynamic Interaction between Vehicles and Structures [M]. Second edition. Beijing: Science Press, 2005.
[24] 郭薇薇, 夏禾, 张田. 桥梁风屏障的气动效应及其对高速列车运行安全的影响分析[J]. 工程力学, 2015, 32(8): 112-119.
GUO Weiwei, XIA He, ZHANG Tian. Analysis on Aerodynamic Effects of Bridge Wind Barrier and Its Influence on Running Safety of a High-Speed Train [J]. Engineering Mechanics, 2015, 32(8): 112-119.
[25] BAKER C J, HEMIDA H, IWNICKI S, et al. Integration of Crosswind Forces into Train Dynamic Modelling [J]. Proceedings of the Institution of Mechanical Engineers, Part F: Journal of Rail and Rapid Transit, 2011, 225(2): 154-164.

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