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A study of integrated chassis control Algorithm with Brake Control and Suspension Control Systems for vehicle stability and handling performance

机译:具有制动控制和悬架控制系统的集成底盘控制算法研究,用于车辆稳定性和处理性能

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Electronic control system has become increasingly popular in automotive applications in recent years, resulting in significant improvement on the vehicle performance. Chassis systems were made progress more stabile and higher dynamic performance by Braking Control, Steering Control and Suspension Control. Especially, ESC (Electronic Stability Control) as an active safety technology assists the driver to keep the vehicle on the intended track and thereby actively prevents accidents. But most electronic chassis control systems so far have been designed for optimization of its own performance. This, sometimes, has resulted in performance degradation when two or more control modules were operating together. Therefore, many studies are shown that is being given to judicious integration of individual chassis control systems in an effort to push the overall vehicle performance further to its limit. The paper deals with the investigation of integration synergy of brake and suspension control for improving vehicle stability on emergency handling. The basic idea is to take electronic Braking Control system and controllable suspension. In this paper, ESC contributions to active safety and CDC (Continuous Damping Control) to semi active suspension have been present with a reliable simulation environment. Then, algorithms for integration of suspension and brake control systems have been developed. An integrated approach for braking and suspension control for maximum lateral stability that is an optimal collaboration between the brake & suspension with respect to maximum stability in highly dynamic maneuvers, various integration rules have been designed, tested, and compared with one another, and the results will be investigated in this paper.
机译:近年来,电子控制系统在汽车应用中越来越受欢迎,导致车辆性能显着改善。通过制动控制,转向控制和悬架控制,底盘系统进行了更稳定和更高的动态性能。特别是,ESC(电子稳定性控制)作为主动安全技术帮助驾驶员将车辆保持在预期的轨道上,从而主动防止事故。但到目前为止,大多数电子底盘控制系统都设计用于优化其自身性能。这有时,当两个或更多个控制模块一起运行时,导致性能下降。因此,已经表明了许多研究,即在努力将整个车辆性能推向其极限的努力,被赋予单独的底盘控制系统的明智集成。本文涉及调查制动和悬架控制的整合协同作用,以提高应急处理稳定性。基本思想是采用电子制动控制系统和可控悬架。本文在可靠的模拟环境中存在对主动安全和CDC(连续阻尼控制)的贡献,并具有可靠的仿真环境。然后,已经开发了用于集成悬架和制动控制系统的算法。用于制动和悬架控制的综合方法,用于最大横向稳定性,这是在高度动态行动中的制动和悬架之间的最佳合作,各种集成规则已经设计,测试,并相互比较,结果将在本文中调查。

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