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Development and evaluation of integrated chassis control systems.

机译:集成底盘控制系统的开发和评估。

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摘要

Integrated chassis control (ICC) systems can be used to reduce the economic and social costs of road accidents. If these systems are to achieve their full potential for improved safety, however, two critical issues must be resolved: (i) the design of a controller integrating all sub-control systems, and (ii) rigorous evaluation to ensure their functionalities.;A decentralized design that coordinates the commands from sub-chassis control systems is achieved under the current business practice, in which suppliers provide OEMs with proprietary controllers. For effective coordination of sub-control commands and for avoidance of liability, the coordination strategy of saturating sub-control commands is used. A coordinator based on a hybrid approach---an offline model predictive control and an online fixed-point control allocation method---is designed, which has superior computational efficiency and flexibility. The effectiveness of the decentralized ICC system is verified via commercial software, CarSim. The simulation results show that ICC can resolve conflicts among subsystems and achieve improved stability. Reconfiguration in the control, for dealing with actuator failure in sub-control systems and robust control under uncertainties is presented.;For the evaluation of ICC, the worst-case scenario evaluation (WCSE) method is enhanced and applied to find the worst possible scenarios, for rigorous evaluation of vehicles, especially vehicles with chassis control systems. Two optimization methods (Sequential Quadratic Programming and Mesh Adaptive Direct Search) are used because of their convergence and computation efficiency. The worst allowable persistent bounded disturbance input generation method is applied to populate the initial points for the optimization problem. The effectiveness of the proposed WCSE method was shown through a rollover prevention case study.
机译:集成底盘控制(ICC)系统可用于减少道路交通事故的经济和社会成本。但是,如果这些系统要充分发挥其提高安全性的潜力,则必须解决两个关键问题:(i)集成了所有子控制系统的控制器的设计;以及(ii)严格评估以确保其功能。根据当前的商业惯例,可以实现协调副机箱控制系统命令的分散设计,在这种商业惯例中,供应商为OEM提供专有控制器。为了有效地协调子控制命令并避免责任,使用了饱和子控制命令的协调策略。设计了基于混合方法的协调器-离线模型预测控制和在线定点控制分配方法-,它具有出色的计算效率和灵活性。分散式ICC系统的有效性已通过商业软件CarSim进行了验证。仿真结果表明,ICC可以解决子系统之间的冲突并提高稳定性。提出了控制中的重新配置,以处理子控制系统中的执行器故障和不确定性下的鲁棒控制。;对于ICC的评估,增强了最坏情况评估(WCSE)方法,并用于发现最坏情况,用于对车辆进行严格评估,尤其是具有底盘控制系统的车辆。由于它们的收敛性和计算效率,使用了两种优化方法(顺序二次规划和网格自适应直接搜索)。应用最坏的允许持久性有界干扰输入生成方法来填充优化问题的初始点。防滚翻案例研究表明了所提出的WCSE方法的有效性。

著录项

  • 作者

    Kou, Youseok.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Automotive.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 130 p.
  • 总页数 130
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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