轨道交通永磁同步电机关键技术研究综述

Review of Key Technologies for Permanent Magnet Synchronous Motor in Rail Transit

  • 摘要: 永磁同步电机(permanent magnet synchronous motor,PMSM)凭借其性能优势,在轨道交通领域得到普遍关注。系统梳理了PMSM在轨道交通领域的应用情况,重点探讨内置式转子结构的设计。研究表明,该结构通过磁路分布,显著提升了功率密度,增加了永磁体的抗退磁防护能力。根据永磁体的形状,对比分析了四种内置式PMSM转子拓扑结构的特点,阐释其在抑制漏磁、降低涡流损耗等方面的技术优势与局限性。结合PMSM的磁路特点,综述了气隙磁场波形的优化策略,以缓解转矩脉动问题。此外,从矢量控制算法改进和多物理场耦合建模等角度,评述了当前PMSM控制技术的研究动态与发展趋势。研究指出,反电势抑制与永磁体热退磁防护是制约PMSM规模化应用的关键挑战。未来需聚焦PMSM转子结构优化、永磁材料磁性能退化、动态参数耦合下的最优电流轨迹规划和智能退磁监测系统开发等方向,推动永磁牵引电机在轨道交通领域的深度适配与性能突破。

     

    Abstract: Permanent Magnet Synchronous Motor (PMSM) have gained widespread attention in the rail transit field due to their supreme performance. This study systematically reviews the applications of PMSM in rail transit, with a focus on the design of built-in rotor structures. Research indicates that this structure significantly enhances power density and improves the demagnetization resistance of permanent magnets through magnetic circuit distribution. Based on the shape of permanent magnets, the application scopes of four built-in PMSM rotor topologies are comparatively analyzed, elucidating their technical advantages and limitations in suppressing leakage flux and reducing eddy current losses. Combining the magnetic circuit characteristics of PMSM, optimization strategies for air-gap magnetic field waveforms are summarized to mitigate torque ripple issues. Additionally, current research trends and development directions in PMSM control technology are discussed from perspectives such as vector control algorithm improvements and multi-physics coupled modeling. The study highlights that back-EMF suppression and thermal demagnetization protection of permanent magnets are key challenges restricting the large-scale application of PMSM. Future efforts should focus on optimizing PMSM rotor structures, addressing magnetic performance degradation of permanent magnet materials, planning optimal current trajectories under dynamic parameter coupling, and intelligent demagnetization monitoring system development, to promote deeper adaptation and performance breakthroughs of permanent magnet traction motors in the rail transit field.

     

/

返回文章
返回