Integrated control of anti-lock and regenerative braking for in-wheel-motor-driven electric vehicles

Jiawang Yong, Yiyao Dong, Zhilin Zhang, Nenglian Feng, Wanting Li
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Abstract

The in-wheel motor is increasingly used in electric vehicles due to the significantly improved controllability, response capability, and energy recovery efficiency based on this technology. However, the independent control of in-wheel motors will lead to braking torque distribution problems, especially in a situation where anti-lock braking systems (ABS) are triggered, which may cause the braking energy to be unrecoverable without the coordinated control between anti-lock and RB for two in-wheel motor-driven electric vehicles based on the RB efficiency map. Control-oriented wheel dynamics and slip ratio models of the system are generated. A sliding mode intervention of regenerative braking (RB) control. This paper presents an integrated algorithm to realize the control-based ABS controller is designed to prevent the wheels from locking and to maintain the slip ratio within a desired level, and the stability and robustness of the controller to uncertainties and disturbances are discussed. Moreover, the braking strength of the driver is calculated and divided into different modes to derive a dynamic braking torque distribution to improve the energy recovery efficiency. The hardware-in-the-loop simulation results show that the recovered energy of the proposed strategy under ABS-triggered maneuver is increased by 52.9% than that of the Proportional, Integral, and Derivative controller and can effectively improve the braking performance and stability.
轮内电机驱动电动汽车的防抱死和再生制动集成控制
由于轮内电机的可控性、响应能力和能量回收效率显著提高,因此在电动汽车中的应用越来越广泛。然而,轮内电机的独立控制会导致制动扭矩分配问题,尤其是在触发防抱死制动系统(ABS)的情况下,如果没有基于 RB 效率图的两个轮内电机驱动电动汽车防抱死和 RB 之间的协调控制,可能会导致制动能量无法回收。生成了以控制为导向的系统车轮动力学和滑移率模型。再生制动(RB)控制的滑动模式干预。本文提出了一种实现基于控制的 ABS 控制器的集成算法,旨在防止车轮抱死并将滑移比保持在所需水平内,并讨论了控制器对不确定性和干扰的稳定性和鲁棒性。此外,还计算了驾驶员的制动强度,并将其分为不同的模式,从而得出动态制动扭矩分布,以提高能量回收效率。硬件在环仿真结果表明,在防抱死制动系统(ABS)触发操纵下,所提策略的能量回收率比比例、积分和微分控制器提高了 52.9%,并能有效改善制动性能和稳定性。
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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