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Risk assessment of flange climb derailment of a rail vehicle

机译:铁路车辆法兰爬升脱轨的风险评估

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摘要

We study the wheel flange climb onto the railhead, which is one of the most dangerous regimes of motion and can lead to derailment. The tangential components of the wheel-rail interaction forces are described by the creep model with small slips taken into account. We pass to the limit of infinite rigidity of the interacting bodies (zero slip velocities). It is shown that, in the actual service conditions of rail vehicle motion, neglecting the wheel-rail slip is not justified; namely, the limit model is determined by the primary Dirac constraints, i.e., finite relations between coordinates and momenta arising owing to the system Lagrangian degeneration. The obtained nonclassical model allows one to study the efficiency of some railway motion safety criteria and analytically estimate derailment conditions, which depend on the flange shape, the track curvature radius, the height of the vehicle center of mass, the wheel-rail interaction forces, the coefficients of friction of the interacting surfaces, and the external perturbation forces and moments.
机译:我们研究了轮缘爬到轨道头上的情况,这是最危险的运动方式之一,可能导致脱轨。轮轨相互作用力的切向分量由蠕变模型描述,并考虑了小的打滑。我们达到了相互作用体的无限刚度极限(零滑移速度)。结果表明,在有轨车辆运动的实际使用条件下,忽略轮轨滑移是不合理的。就是说,极限模型是由主要的狄拉克约束所决定的,即由系统拉格朗日变性引起的坐标与动量之间的有限关系。所获得的非经典模型可以使人们研究一些铁路运动安全标准的效率,并通过分析估计脱轨条件,这些条件取决于法兰形状,轨道曲率半径,车辆质心的高度,轮轨相互作用力,相互作用表面的摩擦系数,以及外部扰动力和力矩。

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