Yaw Moment Control Based on Brake-by-Wire for Vehicle Stbility

IF 2.6 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Hongfang Li, Kai Wang, Huimin Hao, Zhifei Wu
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Abstract

This paper presents a new control strategy for vehicle stability based on brake-by-wire. However, there are few studies in the literature that compare the stability of a vehicle by systematic experimentation with or without controllers. In this paper, the complete experimental procedure is designed, and the experimental results are analyzed in detail. Firstly, the hydraulic model of the brake-by-wire is established based on its structure and working principles, and the yaw moment control method is proposed for the vehicle’s stability. The deviation between the desired values and actual values of the yaw rate and sideslip angle is taken as the input, and the fuzzy controller calculates the additional yaw moment for the vehicle stability. Next, the simulation under different conditions which contain the steering wheel step input, double lane change and turning is conducted, and the yaw rates and sideslip angles with and without stability control are compared, and the effectiveness of the control method is verified. Finally, the turning test is conducted based on brake-by-wire chassis to verify the proposed method. The experimental results show that the yaw rate decreased by 14% and the sideslip angle decreased by 25% when the brake control was applied. Furthermore, the proposed method performed well in improving the stability of the brake-by-wire chassis.
基于线控制动的车辆稳定性偏航力矩控制
提出了一种基于线控制动的汽车稳定性控制策略。然而,文献中很少有研究通过有或没有控制器的系统实验来比较车辆的稳定性。本文设计了完整的实验程序,并对实验结果进行了详细的分析。首先,根据线控制动系统的结构和工作原理,建立了线控制动系统的液压模型,并针对车辆的稳定性提出了横摆力矩控制方法。以横摆角速度和侧滑角的期望值与实际值之间的偏差作为输入,模糊控制器计算车辆稳定性所需的附加横摆力矩。其次,进行了包含方向盘阶跃输入、双变道和转向的不同工况下的仿真,比较了有稳定控制和无稳定控制时的横摆角速度和侧滑角,验证了控制方法的有效性。最后,在线控制动底盘上进行了转向试验,验证了所提方法的正确性。实验结果表明,采用制动控制后,横摆角速度减小14%,侧滑角减小25%。此外,该方法对提高线控制动底盘的稳定性也有较好的效果。
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
World Electric Vehicle Journal
World Electric Vehicle Journal Engineering-Automotive Engineering
CiteScore
4.50
自引率
8.70%
发文量
196
审稿时长
8 weeks
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