四轮电机驱动电动汽车纵向和横向高级耦合动力学控制

Q3 Computer Science
N. E. H. Yazid, T. Chikouche, K. Hartani, A. Merah
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引用次数: 0

摘要

本文提出了一种用于稳定四轮电机驱动电动汽车垂直和横向运动的先进的垂直和横向耦合动力学控制方法。新颖之处在于研究通过正确控制悬架系统来提高电动汽车横向稳定性的可能性,并通过直接偏航控制(DYC)进一步改善悬架系统的性能,而不会在垂直控制器和横向控制器之间产生冲突。有两个主要目标;一是采用新型的组合整车悬架系统,同时提高车辆的平顺性、道路抓地力和横向操纵性能;二是采用滑模控制直接偏航力矩的技术,增强电动汽车的横向操纵性能。对于车辆悬架系统的控制,我们正在寻求设计一种天钩控制来控制悬架减振器,一种滑模控制来稳定轮内减振器(DVA)簧载质量的位置。为了解决颤振现象带来的问题,保证簧载质量的指数稳定性,选择连续奇异端滑模控制器作为DVA控制器设计滑模控制。仿真结果表明,DYC与组合整车悬架系统在多转弯机动和随机路面激励下的协调控制,能够稳定电动汽车的横向运动,提高车辆的平顺性、道路抓地力、抗侧翻性能,同时满足主悬架性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advanced Vertical and Lateral Coupling Dynamics Control for a Four In-wheel Motor Drive Electric Vehicle
This paper presents an advanced vertical and lateral coupling dynamics control for stabilizing the vertical and lateral motion of a four in-wheel motor drive electric vehicle. The novelty is to investigate the possibilities of enhancing the lateral stability of electric vehicle through the correct control of their suspension system, and further improve the suspension system performances using direct yaw control (DYC) without having a contradictory effect between the vertical and lateral controllers. There are two main objectives; the first is to improve ride comfort, road holding and vehicle lateral handling performance simultaneously by using a new combined full vehicle suspension system, and the second is to strengthen electric vehicle lateral handling performance by using a sliding mode technique for controlling the direct yaw moment. For vehicle suspension system control, we are seeking to design a skyhook control to control the suspension damper and a sliding mode control to stabilize the position of the sprung masses of the in-wheel damper vibration absorber (DVA). To solve the problems caused by the chattering phenomena and ensure the exponential stability of the sprung mass, the continuous singular terminal sliding-mode controller is selected to design the sliding mode control used as a DVA controller. Simulation results show that the coordinated control between DYC and combined full vehicle suspension system under several turns' maneuvers and under random road excitations, can stabilize electric vehicle lateral motion, enhance the vehicle ride comfort, road holding, enhance the rollover resistance performance and satisfy the main suspension performances simultaneously.
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来源期刊
Periodica polytechnica Electrical engineering and computer science
Periodica polytechnica Electrical engineering and computer science Engineering-Electrical and Electronic Engineering
CiteScore
2.60
自引率
0.00%
发文量
36
期刊介绍: The main scope of the journal is to publish original research articles in the wide field of electrical engineering and informatics fitting into one of the following five Sections of the Journal: (i) Communication systems, networks and technology, (ii) Computer science and information theory, (iii) Control, signal processing and signal analysis, medical applications, (iv) Components, Microelectronics and Material Sciences, (v) Power engineering and mechatronics, (vi) Mobile Software, Internet of Things and Wearable Devices, (vii) Solid-state lighting and (viii) Vehicular Technology (land, airborne, and maritime mobile services; automotive, radar systems; antennas and radio wave propagation).
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