Integrated stability control of active aerodynamics and active rear-wheel steering for high-speed vehicle

IF 1.5 4区 工程技术 Q3 ENGINEERING, MECHANICAL
Zhaowen Deng, Youqun Zhao, Wei Gao, Qiang Yi, Baohua Wang
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引用次数: 0

Abstract

At present, the research on improving vehicle handling stability, ride comfort, and driving safety mainly focuses on chassis system control, and rarely considers vehicle active aerodynamic control based on aerodynamic characteristics. Therefore, this paper takes the high-speed vehicle with adjustable tail as the research object, and the integrated stability control of active aerodynamics and active rear-wheel steering has been proposed. First, a linear two-degree-of-freedom (2-DOF) vehicle dynamic reference model was established, and the linear quadratic regulator (LQR) active rear-wheel steering controller was designed. Second, the principle of angle of attack distribution for active aerodynamic system was developed, an active aerodynamic Sliding Mode control (SMC) system was designed, which can automatically adjust the angle of attack of the rear wing, according to the vehicle status. Finally, the integrated stability control of active aerodynamics and active rear-wheel steering was realized. In the CarSim and Matlab/Simulink environment, the response characteristics of the integrated control to vehicle handling stability and safety were analyzed. The results show that the integrated stability control can effectively enhance the handling stability, ride comfort, safety, and road tracking ability of the high-speed vehicle, thus reducing the occurrence of vehicle runaway, rollover, and other dangerous situations.
用于高速行驶车辆的主动空气动力学和主动后轮转向综合稳定控制系统
目前,提高车辆操纵稳定性、乘坐舒适性和驾驶安全性的研究主要集中在底盘系统控制方面,很少考虑基于空气动力学特性的车辆主动空气动力学控制。因此,本文以尾部可调的高速车辆为研究对象,提出了主动空气动力学和主动后轮转向的综合稳定性控制。首先,建立了线性二自由度(2-DOF)车辆动态参考模型,并设计了线性二次调节器(LQR)主动后轮转向控制器。其次,发展了主动空气动力系统攻角分配原理,设计了主动空气动力滑动模式控制(SMC)系统,可根据车辆状态自动调节尾翼攻角。最后,实现了主动空气动力学和主动后轮转向的集成稳定控制。在 CarSim 和 Matlab/Simulink 环境下,分析了集成控制对车辆操纵稳定性和安全性的响应特性。结果表明,集成稳定控制能有效提高高速行驶车辆的操纵稳定性、乘坐舒适性、安全性和道路跟踪能力,从而减少车辆失控、侧翻等危险情况的发生。
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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来源期刊
CiteScore
4.40
自引率
17.60%
发文量
263
审稿时长
3.5 months
期刊介绍: The Journal of Automobile Engineering is an established, high quality multi-disciplinary journal which publishes the very best peer-reviewed science and engineering in the field.
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