基于四自由度模型的道路激励下车辆系统非线性动力学分析

IF 0.9 4区 工程技术 Q4 MECHANICS
Xiaochuan Zhao, Quan Yuan, Qian He, Lin Lang
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引用次数: 0

摘要

本文建立了一种带有非线性弹簧和阻尼器的四自由度半车模型,研究了汽车在崎岖路面上的非线性振动。根据达朗贝尔原理,得到了正弦路面激励下车辆系统的非线性动力学微分方程。利用非线性系统的无量纲化和一些随时间降阶技术,得到了一类一阶微分方程组。然后研究了阻尼比和频率比对车身位移、俯仰角和前后轮位移的影响。数值计算表明,阻尼比和频率比控制着车辆系统的非线性振动行为。该模型还可以预测不同速度下正弦路面激励下车辆系统可能的运动状态。车辆系统将由周期运动转变为混沌运动。研究结果为车辆悬架系统的设计和改进提供了依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Nonlinear Dynamic Analysis of Vehicle System under Road Excitation Using a Four-Degree-of-Freedom Model

Nonlinear Dynamic Analysis of Vehicle System under Road Excitation Using a Four-Degree-of-Freedom Model

This paper establishes a four-degree-of-freedom half-vehicle model with nonlinear springs and dampers to study the nonlinear vibration of a car moving on a rough road. According to D’Alembert’s principle, the nonlinear dynamical differential equations of the vehicle system under sinusoidal road excitation are obtained. A system of first-order differential equations is obtained using nondimensionalization and some techniques for order reduction of nonlinear systems with time. Then it is used to investigate the effects of damping and frequency ratios on the body displacement, pitch angle, and displacements of front and rear wheels. The numerical calculation of the equations demonstrates that the damping and frequency ratios control the nonlinear vibration behavior of the vehicle system. The proposed model can also predict the possible motion state of the vehicle system under sinusoidal road excitation at different velocities. The vehicle system will transform periodic motion into chaotic motion. The conclusions provide some available evidence for the design and improvement of the vehicle suspension system.

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来源期刊
Mechanics of Solids
Mechanics of Solids 医学-力学
CiteScore
1.20
自引率
42.90%
发文量
112
审稿时长
6-12 weeks
期刊介绍: Mechanics of Solids publishes articles in the general areas of dynamics of particles and rigid bodies and the mechanics of deformable solids. The journal has a goal of being a comprehensive record of up-to-the-minute research results. The journal coverage is vibration of discrete and continuous systems; stability and optimization of mechanical systems; automatic control theory; dynamics of multiple body systems; elasticity, viscoelasticity and plasticity; mechanics of composite materials; theory of structures and structural stability; wave propagation and impact of solids; fracture mechanics; micromechanics of solids; mechanics of granular and geological materials; structure-fluid interaction; mechanical behavior of materials; gyroscopes and navigation systems; and nanomechanics. Most of the articles in the journal are theoretical and analytical. They present a blend of basic mechanics theory with analysis of contemporary technological problems.
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