INFLUENCE OF MODEL PARAMETERS ON VEHICLE SUSPENSION CONTROL

S. .
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Abstract

Numerical models are widely used to characterize the vehicle dynamics in order to control the active suspension process. However, little information is available on the evaluation of performance when the model parameters do not match real vehicle configurations. Obtaining estimates of the influence of these factors on the system control requires statistical analysis, which generates stochastic data on the issue under consideration. A sensitivity analysis of the test data is one the most successful approaches to this type of problem. A Monte Carlo simulation with uncertainty parameters for mass, front and rear stiffness and damping was used with design of experiments analysis to evaluate the performance of three methods of active suspension control (PID, MPC and LQR). In this study a sensitivity analysis was developed to determine the relevant factors and the crosscorrelation effects of their features. The methodology is applied to a model of a passenger car, which is excited by an asymmetric speed bump and uneven road profile. The changes in the behavior of the main parameters of each controller were observed and evaluated as improved for the PID and MPC controllers and worsened for the LQR controller when compared to the designed condition.
模型参数对车辆悬架控制的影响
为了控制主动悬架过程,数值模型被广泛用于表征车辆动力学特性。然而,当模型参数与实际车辆配置不匹配时,关于性能评估的信息很少。要估计这些因素对系统控制的影响,需要进行统计分析,这就产生了所考虑问题的随机数据。测试数据的敏感性分析是解决这类问题最成功的方法之一。采用不确定质量、前后刚度和阻尼参数的蒙特卡罗仿真方法,结合实验分析设计,对三种主动悬架控制方法(PID、MPC和LQR)的性能进行了评价。本研究采用敏感性分析来确定相关因素及其特征的互相关效应。将该方法应用于受不对称减速带和不平路面激励的客车模型。观察和评估每个控制器的主要参数的行为变化,与设计条件相比,PID和MPC控制器的行为有所改善,LQR控制器的行为则有所恶化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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