Active Disturbance Rejection Control in Magnetic Bearing Rotor Systems with Redundant Structures

At present, magnetic bearings are a better energy-saving choice than mechanical bearings in industrial applications. However, there are strongly coupled characteristics in magnetic bearing–rotor systems with redundant structures, and uncertain disturbances in the electrical system as well as externa...

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Bibliographic Details
Main Authors: Cheng, B. (Author), Cheng, X. (Author), Deng, S. (Author), Hu, Y. (Author), Song, S. (Author), Wu, H. (Author), Zhou, R. (Author)
Format: Article
Language:English
Published: MDPI 2022
Subjects:
Online Access:View Fulltext in Publisher
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001 10.3390-s22083012
008 220425s2022 CNT 000 0 und d
020 |a 14248220 (ISSN) 
245 1 0 |a Active Disturbance Rejection Control in Magnetic Bearing Rotor Systems with Redundant Structures 
260 0 |b MDPI  |c 2022 
856 |z View Fulltext in Publisher  |u https://doi.org/10.3390/s22083012 
520 3 |a At present, magnetic bearings are a better energy-saving choice than mechanical bearings in industrial applications. However, there are strongly coupled characteristics in magnetic bearing–rotor systems with redundant structures, and uncertain disturbances in the electrical system as well as external disturbances, and these unfavorable factors degrade the performance of the system. To improve the anti-interference performance of magnetic bearing systems, this paper proposes the inverse of the current distribution matrix W−1 meaning that the active disturbance rejection control simulation model can be carried out without neglecting the current of each coil. Firstly, based on the working mechanism of magnetic bearings with redundant structures and the nonlinear electromagnetic force model, the current and displacement stiffness models of magnetic bearings are established, and a dynamic model of the rotor is constructed. Then, according to the dynamic model of the rotor and the mapping relationship between the current of each coil and the electromagnetic force of the magnetic bearing, we established the equivalent control loop of the magnetic bearing–rotor system with redundant structures. Finally, on the basis of the active disturbance rejection control (ADRC) strategy, we designed a linear active disturbance rejection controller (LADRC) for magnetic bearings with redundant structures under the condition of no coil failure, and a corresponding simulation was carried out. The results demonstrate that compared to PID+current distribution control strategy, the LADRC+current distribution control strategy proposed in this paper is able to effectively improve the anti-interference performance of the rotors supported by magnetic bearings with redundant structures. © 2022 by the authors. Licensee MDPI, Basel, Switzerland. 
650 0 4 |a Active disturbance rejection 
650 0 4 |a active disturbance rejection controller 
650 0 4 |a Active disturbance rejection controller 
650 0 4 |a Active disturbances rejection controls 
650 0 4 |a Anti-interference 
650 0 4 |a anti-interference performance 
650 0 4 |a Anti-interference performance 
650 0 4 |a Bearing-rotor system 
650 0 4 |a Controllers 
650 0 4 |a 'current 
650 0 4 |a Currents distributions 
650 0 4 |a Disturbance rejection 
650 0 4 |a Dynamic models 
650 0 4 |a Energy conservation 
650 0 4 |a Inverse problems 
650 0 4 |a magnetic bearings 
650 0 4 |a Magnetic bearings 
650 0 4 |a Magnetism 
650 0 4 |a Performance 
650 0 4 |a Redundant structure 
650 0 4 |a redundant structures 
700 1 |a Cheng, B.  |e author 
700 1 |a Cheng, X.  |e author 
700 1 |a Deng, S.  |e author 
700 1 |a Hu, Y.  |e author 
700 1 |a Song, S.  |e author 
700 1 |a Wu, H.  |e author 
700 1 |a Zhou, R.  |e author 
773 |t Sensors