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An effective approach for high-dimensional reliability analysis of train-bridge vibration systems via the fractional moment

机译:通过分数力矩的火车桥振动系统高维可靠性分析的一种有效方法

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摘要

The safety and stability performance of train-bridge vibration (TBV) systems become seriously concerned with an increasing operation speed of rails. In this regard, many assessment indicators in the railway specification are defined based on the wheel-rail force and vehicle acceleration. However, mathematical modeling of this dynamic system needs the probability theory to account for uncertain damping/stiffness model parameters and stochastic track irregularities, which result in thousands of input random variables for digital simulations of this stochastic TBV model. This extremely high-dimensional (EHD) input uncertainty poses a major challenge for many well-known structural reliability algorithms. To this end, this paper proposes to use the principle of maximum entropy (MaxEnt) and the sample-based fractional moment (ME-SFM) for structural reliability analysis of this TBV system. To implement, the reliability performance functions are first defined via the safety and stability criteria in railway specifications, whereas a small number of low-discrepancy samples are used to estimate the fractional moments of a vehicle response quality, e.g. the maximal wheel-rail force and the Sperling ride comfort index that are considered in numerical examples. This sampling nature can ideally overcome the curse of dimensionality of an ordinary structural reliability algorithm. The fractional exponents and Lagrange multipliers used to recover the response distribution are fully optimized through the MaxEnt procedure. Numerical results are provided to demonstrate potential applications of this ME-SFM approach for structural reliability analysis of stochastic train-bridge vibration systems.
机译:火车桥振动(TBV)系统的安全性和稳定性伴随着轨道的运行速度越来越严重。在这方面,铁路规范中的许多评估指标基于轮轨力和车辆加速来定义。然而,该动态系统的数学建模需要概率理论来解释不确定的阻尼/刚度模型参数和随机轨道不规则性,这导致数千个输入随机变量进行该随机TBV模型的数字仿真。这种极高的高维(EHD)输入不确定性对许多知名的结构可靠性算法构成了重大挑战。为此,本文建议使用最大熵(MAXENT)和基于样品的分数时刻(ME-SFM)的原理,用于该TBV系统的结构可靠性分析。为了实现,首先通过铁路规范中的安全性和稳定性标准定义可靠性性能功能,而少量的低差异样本用于估计车辆响应质量的小数矩。最大轮轨力和在数值例中考虑的孢子骑行舒适指数。这种采样性质可以理想地克服普通结构可靠性算法的维度的诅咒。用于恢复响应分布的分数指数和拉格朗日乘法器通过最大过程完全优化。提供了数值结果,以展示该ME-SFM方法对随机火车桥振动系统的结构可靠性分析的潜在应用。

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