TANG Yue, LI Shanyu, XIE Ying, et al. Research on fault-tolerant performance of vehicle-mounted modular steering motors under open-circuit fault conditions[J]. 2026, 30(2): 73-86.
TANG Yue, LI Shanyu, XIE Ying, et al. Research on fault-tolerant performance of vehicle-mounted modular steering motors under open-circuit fault conditions[J]. 2026, 30(2): 73-86. DOI: 10.15938/j.emc.2026.02.007.
车用模块化转向电机开路故障下容错性能研究
摘要
针对车用转向电机对高容错性与高电磁性能的技术要求
提出一种单元绕组模块间兼具电气隔离与良好磁隔离特性的模块化转向电机拓扑
可确保电机在轻故障工况下仍维持较高的输出功率与运行性能。首先
阐述该模块化电机的容错机理
划分绕组开路故障的主要类型; 其次
解析绕组开路相数对电机输出转矩的影响机制
揭示故障导致转矩脉动变大的内在原因
并通过有限元予以验证; 再次
针对典型开路故障类型
提出针对性容错控制策略
推导得到容错电流表达式
该电流可有效抑制转矩中占较大的谐波分量
大幅降低转矩脉动; 最后
搭建模块化转向电机实验平台
对所提容错控制策略的有效性与可行性进行实验验证。结果表明
所提拓扑与控制策略可显著提升电机故障工况下的运行稳定性
为车用转向电机的容错设计提供理论与实验支撑。
Abstract
To meet the technical requirements of high fault tolerance and excellent electromagnetic performance for automotive steering motors
a modular steering motor topology with both electrical isolation and favorable magnetic isolation characteristics between unit winding modules was proposed. This topology can ensure that the motor maintains high output power and operational performance even under light fault conditions. First
the fault-tolerant mechanism of the modular motor was elaborated
and the main types of winding open-circuit faults were classified. Second
the influence mechanism of the number of open-circuited phases on the motor output torque was analyzed
the internal cause of increased torque ripple induced by faults was revealed
and verification was conducted via the finite element method(FEM). Third
aiming at typical open-circuit fault types
a targeted fault-tolerant control strategy was proposed
and the fault-tolerant current expression was derived. The derived current can effectively suppress the dominant harmonic components in the torque and significantly reduce torque ripple. Finally
an experimental platform for the modular steering motor was established to verify effectiveness and feasibility of the proposed fault-tolerant control strategy through experiments. The results demonstrate that the proposed topology and control strategy can significantly improve the operational stability of the motor under fault conditions
and provide theoretical and experimental support for the fault-tolerant design of automotive steering motors.