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DEVELOPMENT OF THE FINITE SEGMENT METHOD FOR MODELING RAILROAD TRACK STRUCTURES

机译:铁路轨道结构建模的有限段方法的发展。

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摘要

In the finite segment method, the dynamics of a deformable body is described using a set of rigid bodies that are connected by elastic force elements. This approach can be used, as demonstrated in this investigation, in the simulation of some rail movement scenarios. The purpose of this investigation is to develop a new track model that combines the absolute nodal coordinate formulation (ANCF) geometry and the finite segment method. The ANCF finite elements define the track geometry in the reference configuration as well as the change in the geometry due to the movement of the finite segments of the track. Using ANCF geometry and the finite segment kinematics, the location of the wheel/rail contact point is predicted online and used to update the creepage expressions due to the finite segment displacements and rotations. The location of the wheel/rail contact point and the updated creepage expressions are used to evaluate the creep forces. A three-dimensional elastic contact formulation (ECF-A), that allows for wheel/rail separation, is used in this investigation. The rail displacement due to the applied loads is modeled by a set of rigid finite segments that are connected by set of spring-damper elements. Each rail finite segment is assumed to have six rigid body degrees of freedom. The equations of motion of the finite segments are integrated with the railroad vehicle system equations of motion in a sparse matrix formulation. The resulting dynamic equations are solved using a predictor-corrector numerical integration method that has a variable order and variable step size. As shown in this paper, the finite segments may be used to model specific phenomena that occur in railroad vehicle applications, including rail rotations and gage widening. The procedure used in this investigation to implement the finite segment method in a general purpose multibody system (MBS) computer program is described. Four simple models are presented in order to demonstrate the implementation of the finite segment method in MBS algorithms. The limitations of using the finite segments approach for modeling the track structure and rail flexibility are also discussed.
机译:在有限段方法中,使用一组通过弹力元件连接的刚体来描述可变形体的动力学。如本调查所示,可以在模拟某些轨道运动场景时使用此方法。这项研究的目的是开发一种结合绝对节点坐标公式(ANCF)几何形状和有限段方法的新航迹模型。 ANCF有限元定义了参考配置中的轨道几何形状,以及由于轨道有限段的移动而导致的几何形状变化。使用ANCF几何形状和有限段运动学,可以在线预测车轮/轨道接触点的位置,并由于有限段位移和旋转而将其用于爬电表达式。轮轨接触点的位置和更新的爬电距离表达式用于评估蠕变力。这项研究使用了三维弹性接触配方(ECF-A),该配方可进行轮轨分离。由施加的载荷引起的钢轨位移通过一组刚性的有限节段建模,这些节段通过一组弹簧阻尼器元件连接。假定每个轨道有限段具有六个刚体自由度。有限段的运动方程与铁路车辆系统的运动方程以稀疏矩阵形式集成在一起。使用具有可变阶数和可变步长的预测器-校正器数字积分方法来求解所得的动力学方程。如本文所示,有限段可用于建模在铁路车辆应用中发生的特定现象,包括轨道旋转和轨距加宽。描述了本研究中用于在通用多体系统(MBS)计算机程序中实施有限段方法的过程。为了演示在MBS算法中有限段法的实现,提出了四个简单的模型。还讨论了使用有限段方法对轨道结构和铁路柔韧性进行建模的局限性。

著录项

  • 来源
  • 会议地点 Pueblo CO(US);Pueblo CO(US)
  • 作者单位

    Department of Mechanical and Industrial Engineering University of Illinois at Chicago Chicago, IL 60607, USA;

    Applied Technology and Engineering Div. ENSCO Inc. Springfield, VA 22151 USA;

    Department of Mechanical and Industrial Engineering University of Illinois at Chicago Chicago, IL 60607, USA;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 铁路运输;
  • 关键词

  • 入库时间 2022-08-26 14:08:39

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