Detailed modelling and LQG\LTR control of a 2-DOF radial active magnetic bearing for rigid rotor

被引:4
|
作者
Ahad, Muhammad Abdul [1 ]
Iqbal, Nadeem [1 ]
Ahmad, Sarvat M. [1 ]
Khan, Masroor [1 ]
机构
[1] GIK Inst Engn Sci & Technol, Fac Mech Engn, Topi, Pakistan
关键词
Active magnetic bearings; Closed-loop control; Frequency response analysis; Mathematical modelling of electro-magnets; PID; LQG; LTR; Robust controller; POSITION CONTROL; DESIGN; SYSTEM; LEVITATION;
D O I
10.1007/s40430-021-02951-4
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The paper presents detailed modelling of rotor, electro-magnetic actuators, and accompanying electronics of an in-house-developed active magnetic bearing (AMB) test rig in a unified manner. The work is the extension of our previous work on a 1-degree-of-freedom (DOF) cantilever beam while in here, the challenging problem of levitating and spinning a 2 DOF rotor on a pair of opposing EMs is investigated. Classical three-term PID controllers are designed as a benchmark controllers, in frequency domain to stabilize the 2-DOF open-loop unstable system, and the performance is compared with the modern state-space control strategies, namely Linear Quadratic Gaussian (LQG) and combined LQG-Loop Transfer Recovery (LQG\LTR) compensators. The tuned robust controllers are deployed on a custom-designed hardware using Simulink Real-Time software. Dual axes controllers performed reasonably well when subjected to static and dynamic tests both in simulation and in experimentation. The key time domain performance objectives such as reference tracking, disturbance rejection, and minimal control efforts as well as frequency domain stability margins are accomplished. The validity of the developed model is thus confirmed through successful synthesis and implementation of both PID and LQG\LTR controllers, wherein the robust controller (LQG\LTR) outperformed the benchmark controller in terms of performance, i.e. minimal overshoot, superior disturbance rejection capabilities, and improved loop gain characteristics. The AMB actuator also showed reasonable dynamic behaviour when the levitated rotor was spun at 1000 r/min. The dynamic performance was evaluated through a two-dimensional rotor orbit plot. The study goes beyond theory and underscores practical design considerations and demonstrates real-time controller implementation.
引用
收藏
页数:18
相关论文
共 50 条
  • [1] Detailed modelling and LQG\LTR control of a 2-DOF radial active magnetic bearing for rigid rotor
    Muhammad Abdul Ahad
    Nadeem Iqbal
    Sarvat M. Ahmad
    Masroor Khan
    Journal of the Brazilian Society of Mechanical Sciences and Engineering, 2021, 43
  • [2] Discrete LQG/LTR Control Augmented by Integrators Applied to a 2-DOF Helicopter
    Barbosa, Fernando S.
    das Neves, Gabriel P.
    Angelico, Bruno A.
    2016 IEEE CONFERENCE ON CONTROL APPLICATIONS (CCA), 2016,
  • [3] Position Decoupling Control of Rigid Rotor of Active Magnetic Bearing
    Li, Binglin
    Zeng, Li
    MECHANIKA, 2023, 29 (04): : 292 - 301
  • [4] Temperature Field Analysis and Optimization of Radial 2-DOF Hybrid Magnetic Bearing
    Zhou, Xun
    Shen, Yangyang
    Wang, Min
    PROGRESS IN ELECTROMAGNETICS RESEARCH M, 2020, 98 : 45 - 54
  • [5] Temperature field analysis and optimization of radial 2-DOF hybrid magnetic bearing
    Zhou X.
    Shen Y.
    Wang M.
    Progress In Electromagnetics Research M, 2020, 98 : 45 - 54
  • [6] Temperature Field Analysis and Optimization of Radial 2-DOF Hybrid Magnetic Bearing
    Zhou, Xun
    Shen, Yangyang
    Wang, Min
    PROGRESS IN ELECTROMAGNETICS RESEARCH M, 2021, 99 : 45 - 54
  • [7] Active Control of Bearing Force Transmissibility for Active Magnetic Bearings-rigid Rotor Systems
    Mao C.
    Zhu C.
    Jixie Gongcheng Xuebao/Journal of Mechanical Engineering, 2019, 55 (19): : 35 - 42
  • [8] Investigation of a 2-DOF Active Magnetic Bearing Actuator for Unmanned Underwater Vehicle Thruster Application
    Ahad, Muhammad Abdul
    Ahmad, Sarvat M.
    ACTUATORS, 2021, 10 (04)
  • [9] Research on Automatic Balance Control of Active Magnetic Bearing-Rigid Rotor System
    Liu, Yang
    Ming, Shuaishuai
    Zhao, Siyao
    Han, Jiyuan
    Ma, Yaxin
    SHOCK AND VIBRATION, 2019, 2019
  • [10] Fast Analytical-Numerical Modelling of Rotor Eccentricity for Radial Active Magnetic Bearing.
    D'Aversa, T.
    Papini, L.
    Bolognesi, P.
    2021 IEEE WORKSHOP ON ELECTRICAL MACHINES DESIGN, CONTROL AND DIAGNOSIS (WEMDCD), 2021, : 70 - 75