The development of a flexible rotor active magnetic bearing system

被引:0
|
作者
Ranft, E.O. [1 ]
Van Schoor, G. [1 ]
Roberts, J.G. [2 ]
机构
[1] School of Electrical, Electronic and Computer Engineering, North-West University, Potchefstroom Campus, Potchefstroom, 2520, South Africa
[2] School of Mechanical Engineering, North-West University, Potchefstroom Campus, Potchefstroom, 2520, South Africa
关键词
Finite element method - Location - Magnetic bearings - Stiffness - Damping;
D O I
暂无
中图分类号
学科分类号
摘要
A design process comprising aspects of modelling and analysis is developed, implemented and verified for a flexible rotor active magnetic bearing system. The system is specified to experience the first three critical frequencies up to an operating speed of 10,000 rpm. Rotor stability at critical frequencies places specific constraints on the equivalent stiffness and damping parameters of the active magnetic bearing. An iterative design process is then initiated by an electromagnetic design of the radial active magnetic bearings resulting in parameters used in the detailed modelling of the system. Stiffness and damping parameters as well as system dynamic response are verified and used to design a flexible rotor. The magnetic bearing locations, displacement sensor locations and rotordynamic response are verified using finite element analysis. The design of the rotor stands central to the iterative design process since it impacts on the forces experienced by the active magnetic bearings as well as the critical frequencies of the active magnetic bearing system. Once constructed the actual active magnetic bearing system stiffness and damping parameters as well as dynamic response are compared to modelled results. The rotordynamic response is characterised by measuring the rotor displacement at pre-defined locations as the rotor traverses the critical frequencies. These results are compared with the predicted rotordynamic response.
引用
收藏
页码:8 / 12
相关论文
共 50 条
  • [1] THE DEVELOPMENT OF A FLEXIBLE ROTOR ACTIVE MAGNETIC BEARING SYSTEM
    Ranft, E. O.
    van Schoor, G.
    Roberts, J. G.
    [J]. SAIEE AFRICA RESEARCH JOURNAL, 2007, 98 (01): : 8 - 12
  • [2] Identification of active magnetic bearing system with a flexible rotor
    Sun Zhe
    He Ying
    Zhao Jingjing
    Shi Zhengang
    Zhao Lei
    Yu Suyuan
    [J]. MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2014, 49 (1-2) : 302 - 316
  • [3] Effect of thrust magnetic bearing on stability and bifurcation of a flexible rotor active magnetic bearing system
    Ho, YS
    Liu, H
    Yu, L
    [J]. JOURNAL OF VIBRATION AND ACOUSTICS-TRANSACTIONS OF THE ASME, 2003, 125 (03): : 307 - 316
  • [4] Sliding mode control for active magnetic bearing system with flexible rotor
    Jang, MJ
    Chen, CL
    Tsao, YM
    [J]. JOURNAL OF THE FRANKLIN INSTITUTE-ENGINEERING AND APPLIED MATHEMATICS, 2005, 342 (04): : 401 - 419
  • [5] Active Control for Multinode Unbalanced Vibration of Flexible Spindle Rotor System with Active Magnetic Bearing
    Qiao, Xiaoli
    Hu, Guojun
    [J]. SHOCK AND VIBRATION, 2017, 2017
  • [6] Stability of Active Magnetic Bearing Flexible Rotor System under Base Swing Condition
    Zhang, Peng
    Zhu, Changsheng
    [J]. Jixie Gongcheng Xuebao/Journal of Mechanical Engineering, 2023, 59 (05): : 167 - 179
  • [7] THE ACTIVE MAGNETIC BEARING ENABLES OPTIMUM DAMPING OF FLEXIBLE ROTOR
    HABERMANN, H
    BRUNET, M
    [J]. MECHANICAL ENGINEERING, 1984, 106 (06): : 88 - 89
  • [8] Bifurcation analysis in flexible rotor supported by active magnetic bearing
    Jang, MJ
    Chen, CK
    [J]. INTERNATIONAL JOURNAL OF BIFURCATION AND CHAOS, 2001, 11 (08): : 2163 - 2178
  • [9] Modeling and Control of Magnetic Flexible Rotor Bearing System
    Toh, Chow Shing
    Chen, Shyh Leh
    [J]. 2013 IEEE/ASME INTERNATIONAL CONFERENCE ON ADVANCED INTELLIGENT MECHATRONICS (AIM): MECHATRONICS FOR HUMAN WELLBEING, 2013, : 423 - 428
  • [10] Optimization of Damping Compensation for a Flexible Rotor System With Active Magnetic Bearing Considering Gyroscopic Effect
    Zheng, Shiqiang
    Han, Bangcheng
    Wang, Yingguang
    Zhou, Jinxiang
    [J]. IEEE-ASME TRANSACTIONS ON MECHATRONICS, 2015, 20 (03) : 1130 - 1137