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首页> 外文期刊>Journal of Computational and Nonlinear Dynamics >A Nonlinear Vehicle-Road Coupled Model for Dynamics Research
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A Nonlinear Vehicle-Road Coupled Model for Dynamics Research

机译:动力学研究的非线性车路耦合模型

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摘要

This paper presents a nonlinear vehicle-road coupled model which is composed of a seven-degree of freedom (DOF) vehicle and a simply supported double-layer rectangular thin plate on a nonlinear viscoelastic foundation. The nonlinearity of suspension stiffness, suspension damping and tire stiffness is considered and the Leaderman constitutive relation and Burgers model are applied to describe the nonlinear and viscoelastic properties of the asphalt topping material. The equations of motion for the vehicle-road system are derived and the partial differential equation of road pavement is discretized into an infinite number of second-order ordinary differential equations and first-order ordinary differential equations by Galerkin's method and a mathematic transform. A numerical integration method for solving this coupled system is developed and the nonlinear dynamic behaviors of the system are analyzed. In addition, the simulation results of the coupled model are compared to those of the uncoupled traditional model. It is found that with the increase of harmonic road surface roughness amplitude, the vehicle body's vertical response is always periodic, whereas the pavement's response varies from quasi-periodic motion to chaotic motion. In the case of a heavy-duty vehicle, a soft subgrade or a higher running speed, the application of the proposed nonlinear vehicle-road coupled model would bring higher computational accuracy and make it possible to design the vehicle and pavement simultaneously.
机译:本文提出了一种非线性的车辆-道路耦合模型,该模型由一个七自由度(DOF)车辆和一个在非线性粘弹性基础上的简单支撑的双层矩形薄板组成。考虑了悬架刚度,悬架阻尼和轮胎刚度的非线性,并采用Leaderman本构关系和Burgers模型描述了沥青顶层材料的非线性和粘弹性。推导了车辆-道路系统的运动方程,并通过Galerkin方法和数学变换将路面的偏微分方程离散为无数个二阶常微分方程和一阶常微分方程。提出了一种求解该耦合系统的数值积分方法,并对系统的非线性动力学行为进行了分析。另外,将耦合模型的仿真结果与未耦合传统模型的仿真结果进行了比较。研究发现,随着谐波路面粗糙度的增大,车身的竖向响应始终是周期性的,而路面的响应则从准周期性运动到混沌运动变化。在重型车辆,软土路基或更高的行驶速度的情况下,所提出的非线性车辆-道路耦合模型的应用将带来更高的计算精度,并使同时设计车辆和路面成为可能。

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