학술논문

Multiple Disturbance Suppression of IPMSM Drives Based on Embedded Discrete-Time Repetitive ADRC With Optimized Parameter Selection
Document Type
Periodical
Source
IEEE Transactions on Power Electronics IEEE Trans. Power Electron. Power Electronics, IEEE Transactions on. 39(5):6052-6062 May, 2024
Subject
Power, Energy and Industry Applications
Aerospace
Communication, Networking and Broadcast Technologies
Components, Circuits, Devices and Systems
Computing and Processing
Engineered Materials, Dielectrics and Plasmas
Fields, Waves and Electromagnetics
General Topics for Engineers
Nuclear Engineering
Signal Processing and Analysis
Transportation
Bandwidth
Transfer functions
Power harmonic filters
Harmonic analysis
Estimation
Observers
Mathematical models
Active disturbance rejection controller
discrete-time repetitive controller
interior permanent magnet synchronous motor (IPMSM)
multiple current disturbances suppression
Language
ISSN
0885-8993
1941-0107
Abstract
The active disturbance rejection controller (ADRC) can be integrated with advanced controllers to further improve its current disturbances suppression capability. However, the performance of existing methods would be deteriorated under the multiple specific periodic disturbances of current loop and the improper parameters of ADRC. To fill this gap, an embedded discrete-time repetitive ADRC (EDTR-ADRC) is proposed to suppress multiple frequency current disturbances in this article. First, the dc and low-frequency disturbances can be eliminated by extended state observer (ESO) of ADRC. Then, the discrete-time repetitive controller is embedded into the control law and adopted to extract multiple specific periodic frequencies signals without phase shift. On this basis, the disturbances rejection capability can be improved by EDTR-ADRC. Meanwhile, the parameter selection can be further optimized by combining the amplitude and phase characteristics of ESO to various disturbances. Then, the stability analysis and antidisturbance ability of the proposed method are elaborated in discrete-time domain. Finally, the effectiveness of the proposed method is verified on a 1.0 kW IPMSM setup.