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Dynamics of wind-rail vehicle-bridge systems

机译:风轨车桥系统的动力学

摘要

An analytical model for dynamics of wind-vehicle-bridge (WVB) systems is presented in this paper in the time domain with wind, rail vehicles and bridge modeled as a coupled vibration system. The analytical model considers many special issues in a WVB system, which include fluid-solid interaction between wind and bridge, solid contact between vehicles and bridge, stochastic wind excitation on vehicles and bridge, time dependence of the system due to vehicle movement, and effect of bridge deck on vehicle wind load and vice versa. The models of wind, vehicles and bridge are presented with wind velocity fluctuations simulated using the simplified spectral representation method, with vehicles modeled as mass-spring-damper systems, and with bridge represented by a finite element model. The interactions between wind and bridge are similar to those considered in conventional buffeting analysis for long span bridges. In considering difficulties in measuring aerodynamic coefficients of moving vehicles on bridge deck, the cosine rule is adopted for the aerodynamic coefficients of moving vehicles to consider yaw angle effect, and expressions of wind forces on moving vehicles are then derived for engineering application. To include mutual effects of wind loads, aerodynamic parameters of vehicles and bridge deck are measured, respectively, using a composite section model test and a specially designed test device. The dynamic interaction between vehicle and bridge depends on both geometric and mechanical relationships between wheels of vehicles and rails on the bridge deck. The equations of motion of the coupled WVB system are derived and solved with a nonlinear iterative procedure. A cable-stayed bridge in China is finally selected as a numerical example to demonstrate dynamic interaction of the WVB system. The results show the validity of the present model as well as wind effects on the rail vehicles and the bridge.
机译:本文在时域上建立了风车桥(WVB)系统动力学分析模型,将风,轨道车辆和桥梁建模为耦合振动系统。该分析模型考虑了WVB系统中的许多特殊问题,包括风与桥之间的流固相互作用,车辆与桥之间的固体接触,车辆与桥上的随机风激励,由于车辆运动引起的系统时间依赖性以及影响桥面对车辆风荷载的影响,反之亦然。用简化的频谱表示法模拟风速,车辆和桥梁的风速波动,将车辆模拟为质量弹簧-阻尼器系统,并用有限元模型表示桥梁。风和桥梁之间​​的相互作用类似于大跨度桥梁的传统抖振分析中考虑的相互作用。在考虑桥面行驶车辆空气动力系数测量困难的情况下,采用余弦法则对行驶车辆空气动力系数进行考虑偏航角的影响,并推导了行驶车辆空气动力的表达式,以进行工程应用。为了包括风荷载的相互影响,使用复合截面模型测试和专门设计的测试设备分别测量了车辆和桥面板的空气动力学参数。车辆与桥梁之间的动态相互作用取决于车辆的车轮与桥面板上的导轨之间的几何关系和机械关系。推导了耦合的WVB系统的运动方程,并通过非线性迭代程序对其进行了求解。最后,以中国的斜拉桥为例,说明了WVB系统的动力相互作用。结果表明,该模型的有效性以及风对轨道车辆和桥梁的影响。

著录项

  • 作者

    Li Y; Qiang S; Liao H; Xu YL;

  • 作者单位
  • 年度 2005
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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