Evaluation of Position Controllers for a Wheatstone Bridge Active Magnetic Bearing system

被引:0
|
作者
Tarisciotti, Luca [1 ]
Papini, Luca [2 ]
Ahumada, Constanza [3 ]
Castano, Catalina Gonzalez [1 ]
Bolognesi, Paolo [2 ]
机构
[1] Univ Andres Bello, Dept Engn, Santiago, Chile
[2] Univ Pisa, DESTEC, Pisa, Italy
[3] Univ Chile, Dept Engn, Santiago, Chile
关键词
Active Magnetic Bearing; Predictive Control; Lyapunov Function Control; MODEL-PREDICTIVE CONTROL; WINDING TOPOLOGY CONVERTER; LATEST ADVANCES; AMB-ROTOR; DESIGN;
D O I
10.1109/ECCE50734.2022.9947554
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Nowadays Active Magnetic Bearing (AMB) are being studied as a solution in many applications where reduced friction, high-speed operation, high reliability, and vibrations exemption are required. To achieve these benefits, AMBs require a complex actuation system, which includes position sensors, power electronics and advanced control dedicated to AMBs operation. All these features are also dependent of the AMBs coil arrangement. Among several solutions, Wheatstone Bridge winding configuration is considered in this paper. In terms of current control, Finite Control Set Model Predictive Control (FCS-MPC) is proposed in this paper, in order to generate the required forces with a fast dynamic response and improve the system robustness. Moreover, the AMB coils inductance is estimated in a predictive fashion, enabling rotor position estimation without including additional sensing coils or position sensors. In fact, the link between coil inductance variation and rotor position can be obtained by means of finite element simulation and analytical modelling. However, the position controller is critical for the system operation and nonlinear high bandwidth controllers are often investigated for AMB systems. For this reason, a Lyapunov Function Control (LFC) is proposed in this paper and compared through simulation with a classical linear controller implementation.
引用
收藏
页数:8
相关论文
共 50 条
  • [21] Experimental Results with Stable and Unstable LPV Controllers for Active Magnetic Bearing Systems
    Witte, Jasper
    Balini, H. M. N. K.
    Scherer, Carsten W.
    2010 IEEE INTERNATIONAL CONFERENCE ON CONTROL APPLICATIONS, 2010, : 950 - 955
  • [22] Design of Active Magnetic Bearing Controllers for Rotors Subjected to Gas Seal Forces
    Lauridsen, Jonas S.
    Santos, Ilmar F.
    JOURNAL OF DYNAMIC SYSTEMS MEASUREMENT AND CONTROL-TRANSACTIONS OF THE ASME, 2018, 140 (09):
  • [23] Modified Linear Active Element Signal Conditioner - A Successor for Wheatstone bridge
    Hamid, Mohd Yuntis
    Thangamani, U.
    Vaya, Pukhraj
    ICIAS 2007: INTERNATIONAL CONFERENCE ON INTELLIGENT & ADVANCED SYSTEMS, VOLS 1-3, PROCEEDINGS, 2007, : 1056 - 1058
  • [24] Deterministic Models of an Active Magnetic Bearing System
    Husain, Abdul Rashid
    Ahmad, Mohamad Noh
    Yatim, Abdul Halim Mohd
    JOURNAL OF COMPUTERS, 2007, 2 (08) : 9 - 17
  • [25] ANFIS Controller for an Active Magnetic Bearing System
    Chen, Seng-Chi
    Van-Sum Nguyen
    Dinh-Kha Le
    Hsu, Ming-Mao
    2013 IEEE INTERNATIONAL CONFERENCE ON FUZZY SYSTEMS (FUZZ - IEEE 2013), 2013,
  • [26] System Identification of Active Magnetic Bearing for Commissioning
    Khader, Shahbaz A.
    Liu, Bin
    Sjoberg, Johan
    2014 PROCEEDINGS OF THE 6TH INTERNATIONAL CONFERENCE ON MODELLING, IDENTIFICATION & CONTROL (ICMIC), 2014, : 289 - 294
  • [27] Modeling and control of an active magnetic bearing system
    Binder, A.
    Sabirin, C. R.
    Popa, D. D.
    Craciunescu, A.
    PROCEEDINGS OF THE 10TH INTERNATIONAL CONFERENCE ON OPTIMIZATION OF ELECTRICAL AND ELECTRONIC EQUIPMENT, VOL III: INDUSTRIAL AUTOMATION AND CONTROL, 2006, : 37 - 44
  • [28] Control System Design for Active Magnetic Bearing
    Wajnert, D.
    Zimon, J.
    2009 2ND INTERNATIONAL STUDENTS CONFERENCE ON ELECTRODYNAMIC AND MECHATRONICS, 2009, : 29 - 30
  • [29] Evaluation of NMIJ Traveling Dual Source Bridge Using NIST Adapted Wheatstone Bridge
    Oe, T.
    Payagala, S.
    Jarrett, D. G.
    Kaneko, N-H
    2020 CONFERENCE ON PRECISION ELECTROMAGNETIC MEASUREMENTS (CPEM), 2020,
  • [30] Unbalance Compensation by Recursive Seeking Unbalance Mass Position in Active Magnetic Bearing-Rotor System
    Jiang Kejian
    Zhu Changsheng
    Chen Liangliang
    IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2015, 62 (09) : 5655 - 5664