列车横向屈曲的研究与仿真

R. Mayville, R. Rancatore, L. Tegeler, A. Little
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引用次数: 20

摘要

客运列车碰撞能量管理的理念之一是确保车辆在碰撞过程中保持在直线上,从而充分利用碰撞区,防止与路边物体的碰撞。作者的工作,以发展的方法,以抵抗横向屈曲的列车导致了它发生的条件进行了深入的研究。在这篇文章中,他们回顾了客运列车在实践中发生屈曲的事故。将要展示的大部分工作是基于碰撞动力学计算机模型的应用,该模型包含了几个重要的列车和轨道参数,包括:轨道/列车相互作用;出轨;车辆的三维运动(包括偏航、俯仰和侧倾);曲线运动;耦合器/承口交互;并结束车辆的挤压。分析了车辆数量、轨道曲率和碰撞速度对碰撞速度的影响。结果表明,除非在与另一列火车正面或尾部相撞的情况下,有很多车辆(超过8-10辆),或者火车在撞击一个相对较轻的物体后还能继续行驶一段距离,否则很难引起侧向屈曲。作者还提出了一种防止或减少旅客列车侧曲的方法,并应用计算机模型对其有效性进行了评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation and simulation of lateral buckling in trains
One of the philosophies of crash energy management for passenger trains is to ensure that the vehicles remain in line during a collision so that the crush zones are fully utilized and impacts with wayside objects is prevented. The authors' work to develop methods of resisting lateral buckling of trains has led to a thorough study of the conditions under which it occurs. In this paper, they present a review of accidents to show when buckling occurs in practice for passenger trains. The bulk of the work to be presented is based on the application of a collision dynamics computer model that incorporates several important train and track parameters, including: track/train interaction; derailment; three-dimensional motion of the vehicles (including yaw, pitch and roll); curved motion; coupler/bellmouth interaction; and end crush of the vehicles. The analysis is carried out to study the effects of number of vehicles, track curvature and collision speed. The results show that lateral buckling is quite difficult to induce unless there are many vehicles (over about 8-10) in the case of a head-on or rear-end collision with another train, or that the train can continue moving for some distance after, say, impacting a relatively light object in a grade crossing. The authors also present a method to prevent or minimize lateral buckling in passenger trains and apply the computer model to assess its effectiveness.
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