Linear Active Disturbance Rejection Decoupling Control of Bearingless Flux-Switching Permanent Magnet Motors Based on System Model Assistance

被引:0
|
作者
Liang, Tongwei [1 ]
Zhou, Yangzhong [1 ]
Chen, Dongyuan [1 ]
Lin, Jialong [1 ]
机构
[1] Fuzhou Univ, Fujian Key Lab New Energy Generat & Power Convers, Fuzhou 350108, Peoples R China
关键词
Motors; Couplings; Rotors; Torque; Windings; Force; Analytical models; Bearingless flux-switching permanent magnet motors; decoupling control; linear active disturbance rejection; model assistance; rotor dynamics;
D O I
10.1109/TIE.2024.3413829
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Since the winding and permanent magnet of bearingless flux-switching permanent magnet motors are located on the stator, the composition of the air gap magnetic field is complicated, which makes the mutual coupling problem of suspension and rotation of the motors prominent, causing the control performance of the suspension and rotation to be affected. Therefore, based on the rotor dynamics model, a decoupling control strategy based on finite element analysis (FEA) and linear active disturbance rejection theory is proposed. First, according to the structure of the motors and the FEA results, the stiffness matrix of the motor suspension plane coupling itself and its coupling with the rotation plane was obtained. Then, through rotor dynamics analysis, the kinematics model of the suspension system was obtained. Furthermore, the coupling stiffness matrix is combined with the active disturbance rejection theory to construct a decoupling control strategy for online self-tuning of key system parameters. The simulation and experimental results show that the proposed scheme has good dynamic performance and robustness while ensuring the precision of suspension control.
引用
收藏
页数:12
相关论文
共 50 条
  • [41] Stator-Flux-Oriented Fault-Tolerant Control of Flux-Switching Permanent-Magnet Motors
    Zhao, Wenxiang
    Cheng, Ming
    Chau, K. T.
    Hua, Wei
    Jia, Hongyun
    Ji, Jinghua
    Li, Wenlong
    IEEE TRANSACTIONS ON MAGNETICS, 2011, 47 (10) : 4191 - 4194
  • [42] Direct Thrust Control of Complementary and Modular Linear Flux-switching Permanent Magnet Motor
    Zhang, Liqi
    Cao, Ruiwu
    Jiang, Ning
    2017 20TH INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES AND SYSTEMS (ICEMS), 2017,
  • [43] Starting torque of single-phase flux-switching permanent magnet motors
    Chen, Y.
    Chen, S.
    Zhu, Z. Q.
    Howe, D.
    Ye, Y. Y.
    IEEE TRANSACTIONS ON MAGNETICS, 2006, 42 (10) : 3416 - 3418
  • [44] Finite Element Analysis of a Novel Bearingless Flux-Switching Permanent Magnet Motor With the Single Winding
    Jia, Hongyun
    Fang, Chao
    Zhang, Tao
    2014 17TH INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES AND SYSTEMS (ICEMS), 2014, : 2315 - 2318
  • [45] Design synthesis of hybrid stator type flux-switching bearingless permanent magnet memory machines
    Yang, YiFei
    Wang, RenZhong
    JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2024, 595
  • [46] Predictive current control of permanent magnet synchronous motor based on linear active disturbance rejection control
    Li, Kunpeng
    SEVENTH INTERNATIONAL CONFERENCE ON ELECTRONICS AND INFORMATION ENGINEERING, 2017, 10322
  • [47] Static characteristics of a novel flux-switching permanent magnet linear motor
    Huang L.
    Yu H.
    Hu M.
    Zhou S.
    Liu H.
    Journal of Southeast University (English Edition), 2011, 27 (01) : 26 - 30
  • [48] Electromagnetic missile launch technology based on linear flux-switching permanent magnet machine
    Li Y.
    Peng X.
    Liang X.
    Zhao B.
    Li, Yanming (chenhuan2280@126.com), 2016, Science Press (42): : 2830 - 2834
  • [49] Design and performance analysis of permanent magnet flux-switching motors using segmental permanent magnets
    Zhou, Yongqin
    Zhou, Lei
    Hu, Bo
    Li, Ran
    IEICE ELECTRONICS EXPRESS, 2019, 16 (11): : 1 - 6
  • [50] Fault tolerant control of flux-switching permanent magnet motors with three kinds of harmonic current injections
    Yu F.
    Cheng M.
    Xia Z.
    Chau K.T.
    1600, Chinese Society for Electrical Engineering (36): : 836 - 844