Design, Modelling and Control of MIMO AMB system with 3 radial bearing planes for Megawatt-Range High-Speed Rotor

被引:0
作者
Jastrzebski, Rafal P. [1 ]
Kurvinen, Emil [2 ]
Pyrhonen, Olli [1 ]
机构
[1] Lappeenranta Lahti Univ Technol, LUT Sch Energy Syst, Dept Elect Engn, Lappeenranta, Finland
[2] Lappeenranta Lahti Univ Technol, LUT Sch Energy Syst, Dept Mech Engn, Lappeenranta, Finland
来源
2019 IEEE INTERNATIONAL ELECTRIC MACHINES & DRIVES CONFERENCE (IEMDC) | 2019年
基金
芬兰科学院;
关键词
magnetic levitation; digital control; MIMO control; centralized control; high-speed induction machine;
D O I
暂无
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
High-speed electric machines require dedicated bearings. Active magnetic bearings (AMBs) provide economical solution for high-power rotors where oil-free operation and low operational costs are crucial. In high-power and high-speed applications benefits of contactless rotor suspension, e.g. compared to traditional rolling element bearings, as well as online monitoring and diagnostics are highly valued. AMBs offer low losses and balancing capabilities in integrated package. The design of the high-speed high-power induction machine rotor is very challenging and cost sensitive. Manufacturing limitations, thermal and cooling constraints, stress and rotor dynamic issues and total efficiency are interdependent The space and power electronics are limited for bearings and control design, which have to provide robust rotor suspension. This work presents electromagnetic design, modelling, and control of fully levitated AMB-rotor for demanding application. The machine design offers very limited space but 3 radial bearing planes and separate axial AMB are used. The control plant is modelled based on flexible rotor dynamics; while bearing inductances and forces are modelled with 2D and 3D FEM electromagnetic simulations. The presented LQG model-based control is scalable from single axis axial suspension to coupled centralized 3 actuator-sensor pairs radial suspension. The control has to deal with considerable plant parameter variations because of saturation and high destabilizing position stiffness because of small airgaps. The control design is verified in simulations using non-linear engineering models.
引用
收藏
页码:805 / 811
页数:7
相关论文
共 13 条
  • [1] Multivariable State Feedback Control of a 500 000-r/min Self-Bearing Permanent-Magnet Motor
    Baumgartner, Thomas
    Kolar, Johann W.
    [J]. IEEE-ASME TRANSACTIONS ON MECHATRONICS, 2015, 20 (03) : 1149 - 1159
  • [2] New Testing Method for Large High-Speed Induction Motors
    Durantay, Lionel
    Velly, Nicolas
    Pradurat, Jean-Francois
    Chisholm, Mark
    [J]. IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 2017, 53 (01) : 660 - 666
  • [3] ISO, 2006, ISO 14839-3
  • [4] Jastrzebski R.P., 2018, 2018 20 EUR C POW EL, P1
  • [5] Cascaded Position-Flux Controller for an AMB System Operating at Zero Bias
    Jastrzebski, Rafal P.
    Smirnov, Alexander
    Mystkowski, Arkadiusz
    Pyrhonen, Olli
    [J]. ENERGIES, 2014, 7 (06) : 3561 - 3575
  • [6] Lateb R, 2009, INT C ELECTR MACH SY, P188
  • [7] Li G., 2016, P ISMB10, P124
  • [8] Mushi S.E., 2010, ISMB10
  • [9] High-Speed High-Output Solid-Rotor Induction-Motor Technology for Gas Compression
    Pyrhonen, Juha
    Nerg, Janne
    Kurronen, Panu
    Lauber, Uwe
    [J]. IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2010, 57 (01) : 272 - 280
  • [10] Singh S, 2013, IEEE INT ADV COMPUT, P1