现代制造工程 ›› 2026, Vol. 550 ›› Issue (7): 86-94.doi: 10.16731/j.cnki.1671-3133.2026.07.010

• 车辆工程制造技术 • 上一篇    下一篇

四轮独立电动汽车四轮转向与直接横摆力矩集成控制*

阎春利, 李博, 郭家丽   

  1. 东北林业大学机电工程学院,哈尔滨 150000
  • 收稿日期:2025-08-04 出版日期:2026-07-18 发布日期:2026-08-05
  • 作者简介:阎春利,博士研究生,副教授,主要研究方向为车辆系统动力学和智能汽车技术。E-mail:lindayan@nefu.edu.cn
  • 基金资助:
    *国家自然科学基金项目(52175497);中央高校基本科研业务费专项资金资助项目(2572014CB19)

Integrated control of four-wheel steering and direct yaw moment for four-wheel independent electric vehicle

YAN Chunli, LI Bo, GUO Jiali   

  1. College of Mechanical and Electrical Engineering,Northeast Forestry University,Harbin 150000,China
  • Received:2025-08-04 Online:2026-07-18 Published:2026-08-05

摘要: 四轮独立电动汽车具有车轮独立可控的特点,易于实现整车集成控制;但是因其具有多个自由度的特点,在转向运动中存在行驶不稳定的问题。针对四轮独立电动汽车转向运动稳定性问题,采用四轮转向(four-Wheel Steering,4WS)与直接横摆力矩控制(Direct Yaw moment Control,DYC)(4WS+DYC)集成控制策略。集成控制策略基于分层控制理念,以跟踪参考模型为目标,稳定控制层通过模糊滑模稳定控制器来补偿汽车稳定运行所需的附加横摆力矩和附加后轮转角;前轮转角控制基于变传动比的方法,计算出前轮转角并完成汽车的基本转向。力矩分配层基于载荷分配的控制算法,考虑约束条件实现四轮驱动力矩分配。最后,验证在低速、低附着双移线工况和高速、高附着正弦工况四轮转向与直接横摆力矩集成控制策略的效果,结果表明,该策略提高了横摆角速度和质心侧偏角的跟踪性能,同时模糊滑模稳定控制器展现出良好的收敛性,能够提升汽车转向运动时的稳定性。

关键词: 四轮独立电动汽车, 集成控制, 模糊滑模控制, 变传动比, 附加横摆力矩

Abstract: Four-wheel independently actuated electric vehicles feature independently controllable wheels, which facilitates integrated vehicle control. However, due to their multi-degree-of-freedom characteristics, they exhibit unstable driving behavior during steering maneuvers. To address the steering stability problem of such vehicles, an integrated control strategy combining four-Wheel Steering (4WS) and Direct Yaw moment Control (DYC) is adopted, denoted as 4WS+DYC. The control strategy is based on a layered control concept,targeting reference model tracking. The stability control layer uses a fuzzy sliding mode controller to compensate for the additional yaw moment and rear-wheel angle needed for stable vehicle operation. The front wheel angle is controlled using a variable transmission ratio method,calculating the front wheel angle to achieve basic vehicle steering. The torque distribution layer uses a load distribution-based control algorithm,considering constraints to achieve four-wheel torque distribution. Finally,it verifies the effectiveness of the integrated control strategy for four-wheel steering and direct yaw moment under the conditions of low speed,low adhesion dual lane shifting,and high speed,high adhesion sinusoidal conditions. Results show that this strategy improves the tracking performance of yaw rate and sideslip angle,with the fuzzy sliding mode controller demonstrating good convergence,thereby enhancing vehicle stability during steering motion.

Key words: four-wheel independent electric vehicle, integrated control, fuzzy sliding mode control, variable transmission ratio, additional yaw moment

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