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The Integrated Control of Electronic Suspension and Steering System Based on Fuzzy Logic Method in Vehicle

机译:基于车辆模糊逻辑方法的电子悬架和转向系统的集成控制

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As well known, electrical power assisted steering system (EPS) can improve driver''s steering operation and vehicle maneuverability by creating reactive torque, otherwise, semi-active suspension system (SAS) can improve the ride quality and handling performance within a given suspension stroke limitation through varying the damping forces continuously according to the road disturbance. Usually, EPS and SAS perform independently to improve maneuverability in steering and the ride comfort respectively. However, as the electronic control subsystems of the chassis in vehicle, they often work together, the performances of vehicle depend not only every subsystem but also the relationship of these subsystems strongly. In this paper, the full vehicle model, the SAS model and EPS model are established, then the integrated control of EPS and SAS is investigated and the fuzzy logic control strategy is presented to control the integrated electronic control system. Numerical simulations are carried out to identify the effectiveness of the integrated control system of EPS and SAS. The simulation results show that the integrated control system can obviously improve vehicle maneuverability and ride quality much more than EPS and SAS control system only.
机译:众所周知,电力辅助转向系统(EPS)可以通过产生反应性扭矩来改善驾驶员的转向操作和车辆操纵性,否则,半主动悬架系统(SAS)可以提高给定悬架内的乘坐质量和处理性能。通过根据道路干扰连续改变阻尼力的冲程限制。通常,EPS和SAS独立执行,以分别提高转向和乘坐舒适性的机动性。然而,作为车辆底盘的电子控制子系统,他们经常一起工作,车辆的性能不仅取决于每个子系统,还要强烈地依赖于这些子系统的关系。在本文中,建立了全车型,SAS模型和EPS模型,研究了EPS和SAS的集成控制,并提出了模糊逻辑控制策略来控制集成的电子控制系统。进行了数值模拟,以确定EPS和SAS综合控制系统的有效性。仿真结果表明,综合控制系统可显着提高车辆机动性,仅限于EPS和SAS控制系统的高度。

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