Analysis of Stiffness and Damping Properties of Active Magnetic Bearing Using Cross Feedback Control

被引:0
|
作者
Pu, Peng-Cheng [1 ]
Yu, Jin-Peng [1 ]
Zhao, Lei [1 ]
机构
[1] Tsinghua Univ, Collaborat Innovat Ctr Adv Nucl Energy Technol, Inst Nucl & New Energy Technol, Minist Educ,Key Lab Adv Reactor Engn & Safety, Beijing 100084, Peoples R China
来源
PROCEEDINGS OF THE 3RD ANNUAL INTERNATIONAL CONFERENCE ON MECHANICS AND MECHANICAL ENGINEERING (MME 2016) | 2017年 / 105卷
基金
中国国家自然科学基金;
关键词
Active magnetic bearing; Cross feedback control; Stiffness; Damping; SYSTEM;
D O I
暂无
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Stiffness and damping properties of the magnetic bearings are mainly determined by the parameters of system controller, both of which are the function of rotor frequency. In the system of magnetic suspensionfly wheel (MSFW), the rotor applied has a large moment of inertia ratio, resulting in a strong gyroscopic effect at high speed. Decentralized PID controller cannot assure the stability of suspension at high speed. Therefore, cross feedback control must be added to the control loop of the system. The cross stiffness and damping terms will be introduced to the matrix of stiffness and damping of the system. In this paper, the magnetic bearing rotor system with displacement and velocity cross feedback is discussed from the perspective of the stiffness and damping. The results show that, equivalent stiffness of the rotor approximates a negative constant in low frequency, and with rotation increasing, it increases continually after approaching to zero, Equivalent rotor damping approximates a constant, and decreases continually in high frequency with rotation speed increasing. The filters have influence on stiffness and damping characteristics of magnetic bearing in different frequency range.
引用
收藏
页码:327 / 337
页数:11
相关论文
共 50 条
  • [31] Damping analysis of beams submitted to passive and active control
    Boudaoud, H.
    Daya, E. M.
    Belouettar, S.
    Duigou, L.
    Potier-Ferry, M.
    ENGINEERING STRUCTURES, 2009, 31 (02) : 322 - 331
  • [32] Analysis of PID Controller Parameters Influence on Dynamic Properties of an Active Magnetic Suspension
    Izosimova T.A.
    Evdokimov Y.K.
    Russian Aeronautics, 2017, 60 (4): : 632 - 639
  • [33] Study on PID tuning strategy based on dynamic stiffness for radial active magnetic bearing
    Sun, Jinji
    Zhou, Han
    Ma, Xin
    Ju, Ziyan
    ISA TRANSACTIONS, 2018, 80 : 458 - 474
  • [34] Linear Output Feedback Control of a Three-Pole Magnetic Bearing
    Darbandi, S. Mahdi
    Behzad, Mehdi
    Salarieh, Hassan
    Mehdigholi, Hamid
    IEEE-ASME TRANSACTIONS ON MECHATRONICS, 2014, 19 (04) : 1323 - 1330
  • [35] Hybrid control of a three-pole active magnetic bearing
    Kiani, Mandi
    Salarieh, Hassan
    Alasty, Aria
    Darbandi, S. Mandi
    MECHATRONICS, 2016, 39 : 28 - 41
  • [36] The Impact Analysis of Beating Vibration for Active Magnetic Bearing
    Gao, Hui
    Meng, Xianhai
    Qian, Kejun
    IEEE ACCESS, 2019, 7 : 134104 - 134112
  • [37] Position Decoupling Control of Rigid Rotor of Active Magnetic Bearing
    Li, Binglin
    Zeng, Li
    MECHANIKA, 2023, 29 (04): : 292 - 301
  • [38] Study on active magnetic bearing control system based on DSP
    Li Xuemei
    Li Jincheng
    ISTM/2007: 7TH INTERNATIONAL SYMPOSIUM ON TEST AND MEASUREMENT, VOLS 1-7, CONFERENCE PROCEEDINGS, 2007, : 2869 - 2872
  • [39] Control of an active magnetic bearing system using swarm intelligence-based optimization techniques
    Suraj Gupta
    Sukanta Debnath
    Pabitra Kumar Biswas
    Electrical Engineering, 2023, 105 : 935 - 952
  • [40] Control of an active magnetic bearing system using swarm intelligence-based optimization techniques
    Gupta, Suraj
    Debnath, Sukanta
    Biswas, Pabitra Kumar
    ELECTRICAL ENGINEERING, 2023, 105 (02) : 935 - 952