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Interface Damage Assessment of Railway Slab Track Based on Reliability Techniques and Vehicle-Track Interactions

机译:基于可靠性技术和车轨相互作用的铁路平板轨道接口损伤评估

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The interface damage as one of the most critical damage issues in railway slab tracks is evaluated in this work on the basis of reliability techniques and vehicle-track interactions. First, a coupled dynamics model of a vehicle and the slab track is developed involving nonlinear spring-damper elements for simulation of the interface damage. Furthermore, considering the random nature of the damage length, the damage height, the rail pad stiffness, and the elastic modulus of cement asphalt (CA) mortar layer, explicit mathematical expressions between the input stochastic variables and output dynamic responses are obtained on the basis of the combination of the response surface method (RSM) and the dynamic simulations of vehicle-track system. Subsequently, Monte Carlo (MC) simulations are performed for the probability analysis by directly using the response surface functions. Finally, by adopting the amplification factor (AF) of the dynamic response as the control indices, the damage assessment criterion and the corresponding safety threshold are suggested on the basis of the concept of reliability for the long-term dynamic performance of slab tracks. The results show that the interface damage has a significant influence on the slab displacement, the slab acceleration, and the dynamic stress of CA mortar layer; the damage length is the primary control index for the interface damage with a complete failure along the width of the slab track; the interface damage can be evaluated as damage levels I, II, and III when the survival probabilities for the AF of exceeding a certain value are 50, 30, and 10%, respectively; the safety thresholds for the interface damage levels I, II, and III are suggested to be 0.60, 0.85, and 1.05m, respectively.
机译:在这项工作中,基于可靠性技术和车辆与轨道之间的相互作用,对界面损坏作为铁路平板轨道上最关键的损坏问题之一进行了评估。首先,开发了包含非线性弹簧阻尼器元件的车辆和平板轨道的耦合动力学模型,用于模拟界面损伤。此外,考虑到损伤长度,损伤高度,路轨垫板刚度和水泥沥青(CA)砂浆层的弹性模量的随机性,在此基础上获得了输入随机变量和输出动力响应之间的明确数学表达式。响应面法(RSM)与车辆跟踪系统动力学仿真的结合随后,直接使用响应面函数对概率分析进行蒙特卡洛(MC)仿真。最后,以动态响应的放大因子(AF)为控制指标,基于板坯轨道长期动态性能的可靠性概念,提出了损伤评估准则和相应的安全阈值。结果表明,界面损伤对CA砂浆层的平板位移,平板加速度和动应力有显着影响。损坏长度是界面损坏的主要控制指标,沿着平板轨道的宽度完全失效;当AF的生存概率分别超过50%,30%和10%时,可以将界面损伤评估为损伤等级I,II和III。建议将接口损坏级别I,II和III的安全阈值分别设置为0.60、0.85和1.05m。

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