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Adaptive Real-Time Estimation on Road Disturbances Properties Considering Load Variation via Vehicle Vertical Dynamics

机译:通过车辆垂直动力学考虑负载变化的道路扰动特性的自适应实时估计

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摘要

Vehicle dynamics are directly dependent on tire-road contact forces and torques which are themselves dependent on the wheels' load and tire-road friction characteristics. An acquisition of the road disturbance property is essential for the enhancement of vehicle suspension control systems. This paper focuses on designing an adaptive real-time road profile estimation observer considering load variation via vehicle vertical dynamics. Firstly, a road profile estimator based on a linear Kalman filter is proposed, which has great advantages on vehicle online control. Secondly, to minimize the estimation errors, an online identification system based on the Recursive Least-Squares Estimation is applied to estimate sprung mass, which is used to refresh the system matrix of the adaptive observer to improve the road estimation efficiency. Last, for mining road category from the estimated various road profile sequencse, a road categorizer considering road frequency and amplitude simultaneously is approached and its efficiency is validated via numerical simulations, in which the road condition is categorized into six special ranges, and this road detection strategy can provide the suspension control system with a better compromise for the vehicle ride comfort, handling, and safety performance.
机译:车辆动力学直接取决于轮胎与道路的接触力和扭矩,而轮胎与轮胎的接触力和扭矩又取决于车轮的负载和轮胎与道路的摩擦特性。道路干扰特性的获取对于增强车辆悬架控制系统至关重要。本文着重于设计一种考虑车辆垂直动力学变化的自适应实时道路轮廓估计观测器。首先,提出了一种基于线性卡尔曼滤波器的道路轮廓估计器,该方法在车辆在线控制中具有很大的优势。其次,为了最小化估计误差,基于递推最小二乘估计的在线识别系统被用于估计簧载质量,该系统用于刷新自适应观测器的系统矩阵以提高道路估计效率。最后,对于从估计的各种道路轮廓序列中挖掘出的道路类别,采用了一种同时考虑道路频率和振幅的道路分类器,并通过数值模拟验证了其效率,其中将道路状况分为六个特殊范围,并且该道路检测该策略可以为悬架控制系统提供更好的折衷,以改善车辆的乘坐舒适性,操控性和安全性。

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  • 来源
    《Mathematical Problems in Engineering》 |2013年第12期|283528.1-283528.9|共9页
  • 作者单位

    Jilin Univ, State Key Lab Automot Simulat & Control, Changchun 130022, Jilin, Peoples R China.;

    Zhejiang Geely Automobile Res Inst CO Ltd, Hangzhou 311228, Zhejiang, Peoples R China.;

    Hunan Univ, State Key Lab Adv Design & Manufacture Vehicle Bo, Changsha 410082, Hunan, Peoples R China.;

    Univ Agder, Fac Sci & Engn, Dept Engn, N-4898 Grimstad, Norway.;

    Zhejiang Geely Automobile Res Inst CO Ltd, Hangzhou 311228, Zhejiang, Peoples R China.;

    Jilin Univ, State Key Lab Automot Simulat & Control, Changchun 130022, Jilin, Peoples R China.;

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