主办:陕西省汽车工程学会
ISSN 1671-7988  CN 61-1394/TH
创刊:1976年

汽车实用技术 ›› 2026, Vol. 51 ›› Issue (15): 29-34.DOI: 10.16638/j.cnki.1671-7988.2026.015.005

• 新能源汽车 • 上一篇    下一篇

车用双电机扭矩平衡控制

张博,孙军民,徐秀妮,刘成发   

  1. 陇东学院 电气工程系
  • 发布日期:2026-08-11
  • 通讯作者: 张博
  • 作者简介:张博(1993-),男,硕士,工程师,研究方向为永磁电机设计及其控制
  • 基金资助:
    陇东学院科技创新基金(XYZK2515)

Torque balance control for dual motors in vehicle applications

ZHANG Bo, SUN Junmin, XU Xiuni, LIU Chengfa   

  1. Department of Electrical Engineering, Longdong University
  • Published:2026-08-11
  • Contact: ZHANG Bo

摘要: 随着新能源汽车产业快速发展,双电机与多电机驱动架构已成为提升车辆动力性能、 操控稳定性与传动效率的主流技术方案。同一驱动桥上双电机输出扭矩失衡,会直接导致车 辆行驶跑偏、传动系统冲击加剧、轮胎磨损不均及行驶安全性下降等问题。针对当前双电机 扭矩控制多采用静态平均分配法、动态同步性能不足的现状,文章以轮边/轮毂双电机驱动系 统为研究对象,建立永磁同步电机数学模型与动力学方程,提出一种基于最大扭矩法的动态 扭矩平衡控制策略。该策略无需增加扭矩传感器,通过转速信号微分获取电机加速度,间接 估计实际扭矩差异,以加速度最大值为基准进行动态补偿,快速修正双电机输出偏差。在 MATLAB/Simulink 中搭建仿真模型,模拟电机制造离散性带来的参数差异,对比平均扭矩法 与最大扭矩法的控制效果。结果表明,所提策略可在毫秒级时间尺度抑制扭矩偏差,使双电 机输出保持高度同步,平衡精度与响应速度显著优于传统方法。研究成果可为双电机驱动电 动汽车扭矩协同管理提供核心算法支撑,对提升整车行驶平顺性、可靠性与安全性具有重要 工程应用价值。

关键词: 电动汽车;双电机;扭矩平衡;最大扭矩法;动态补偿;MATLAB/Simulink

Abstract: With the rapid development of new energy vehicles, dual-motor and multi-motor drive architectures have become mainstream technical solutions to improve power performance, handling stability and transmission efficiency of vehicles. The torque imbalance of dual motors on the same drive axle will directly lead to problems such as vehicle driving deviation, intensified transmission system shock, uneven tire wear and reduced driving safety. Aiming at the current situation that most dual-motor torque control adopts static average distribution method with insufficient dynamic synchronization performance, this paper takes the wheel-side/hub dual-motor drive system as the research object, establishes the mathematical model and dynamic equation of permanent magnet synchronous motor, and proposes a dynamic torque balance control strategy based on the maximum torque method. Without adding torque sensors, this strategy obtains motor acceleration through differential speed signals, indirectly estimates actual torque differences, performs dynamic compensation based on the maximum acceleration value, and quickly corrects dual-motor output deviations. A simulation model is built in MATLAB/Simulink to simulate the parameter differences caused by motor manufacturing discreteness, and the control effects of average torque method and maximum torque method are compared. The results show that the proposed strategy can suppress the torque deviation on a millisecond time scale, keep the dual-motor output highly synchronized, and its balance accuracy and response speed are significantly better than traditional methods. The research results can provide core algorithm support for torque cooperative management of dual-motor driven electric vehicles, and have important engineering application value for improving vehicle ride comfort, reliability and safety.

Key words: electric vehicles; dual motors; torque balance; maximum torque method; dynamic compensation; MATLAB/Simulink