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Development of high-speed railway vehicle derailment simulation - Part I: A new wheel/rail contact method using the vehicle/rail coupled model

机译:高速铁路车辆脱轨仿真的开发-第一部分:使用车轨耦合模型的新型轮轨接触方法

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With an increase in speed, a vehicle's dynamic behavior becomes apparent. Increasing speed not only affects the sitting comfort, but also may lead to derailment. However, an accident is difficult to predict, because the derailment mechanism is not thoroughly understood. The reliability of derailment simulations are completely conditional to being able to accurately solve the wheel and rail contact problem. Thus, an improved three-dimensional contact trace method is presented to quickly obtain the correct point. Then, a fast and accurate method for obtaining the contact force, which includes the creep force and the normal force, is improved. The results correspond more closely to realitic solutions compared with those of current methods. Next, a dynamic model of the vehicle and the rail is established. The two models are not independent of each other. The wheel-rail contact calculation is the key consideration for coupling in the two models. Finally, all the dynamic models, which are called dynamic derailment simulation for high-speed vehicle (DDSHV), are developed in MATLAB. To identify two different types of derailment, derailment judgment is embedded in the program package. The simulation system can be used to study the dynamic derailment mechanism, analyze derailment conditions and influence factors, and determine the key cause of the incident.
机译:随着速度的增加,车辆的动态行为变得明显。速度的提高不仅会影响乘坐舒适性,还会导致脱轨。但是,由于脱轨机理尚未完全理解,因此事故难以预测。脱轨模拟的可靠性完全取决于能否准确解决车轮和轨道接触问题。因此,提出了一种改进的三维接触跟踪方法以快速获得正确的点。然后,改进了用于获得包括蠕变力和法向力的接触力的快速且准确的方法。与当前方法相比,结果更符合现实解决方案。接下来,建立车辆和轨道的动力学模型。这两个模型不是彼此独立的。轮轨接触计算是两个模型耦合的关键考虑因素。最后,在MATLAB中开发了所有动态模型,这些模型称为高速车辆动态脱轨仿真(DDSHV)。为了识别两种不同类型的脱轨,在程序包中嵌入了脱轨判断。该仿真系统可用于研究动态脱轨机理,分析脱轨条件和影响因素,并确定事件的关键原因。

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