LAPSE:2023.16840
Published Article

LAPSE:2023.16840
Adaline-Based Control Schemes for Non-Sinusoidal Multiphase Drives−Part I: Torque Optimization for Healthy Mode
March 3, 2023
Abstract
More degrees of freedom not only enable multiphase drives to be fault-tolerant but also allow non-sinusoidal electromotive forces (NS-EMFs) in high-quality vector control. NS-EMFs lead to lower costs of design and manufacturing of electrical machines. However, the presence of multi-harmonics in NS-EMFs possibly generates pulsating torque in both healthy and faulty conditions of multiphase drives. To facilitate the use of NS-EMFs, this two-part study proposes control schemes to adaptively improve torque quality of multiphase drives in dealing with multi-harmonics of NS-EMFs. The proposed schemes are based on a simple but effective type of artificial intelligence, Adaptive Linear Neuron (Adaline). The knowledge of multiphase drives including the harmonic ranks of NS-EMFs and the rotor position is exploited to design the online-trained optimal Adalines. The first part of this study is to propose a control scheme using an Adaline for healthy mode with high-quality torque regardless of numerous harmonics in NS-EMFs. The second part of this study introduces a control scheme using another Adaline for open-circuit faults. The proposed schemes are numerically and experimentally validated on a seven-phase permanent magnet synchronous machine (PMSM) possessing a high total harmonic distortion (THD = 38%) of NS-EMFs.
More degrees of freedom not only enable multiphase drives to be fault-tolerant but also allow non-sinusoidal electromotive forces (NS-EMFs) in high-quality vector control. NS-EMFs lead to lower costs of design and manufacturing of electrical machines. However, the presence of multi-harmonics in NS-EMFs possibly generates pulsating torque in both healthy and faulty conditions of multiphase drives. To facilitate the use of NS-EMFs, this two-part study proposes control schemes to adaptively improve torque quality of multiphase drives in dealing with multi-harmonics of NS-EMFs. The proposed schemes are based on a simple but effective type of artificial intelligence, Adaptive Linear Neuron (Adaline). The knowledge of multiphase drives including the harmonic ranks of NS-EMFs and the rotor position is exploited to design the online-trained optimal Adalines. The first part of this study is to propose a control scheme using an Adaline for healthy mode with high-quality torque regardless of numerous harmonics in NS-EMFs. The second part of this study introduces a control scheme using another Adaline for open-circuit faults. The proposed schemes are numerically and experimentally validated on a seven-phase permanent magnet synchronous machine (PMSM) possessing a high total harmonic distortion (THD = 38%) of NS-EMFs.
Record ID
Keywords
adaptive linear neuron, multi-harmonic, multiphase machine, non-sinusoidal electromotive force, seven-phase machine, torque ripple elimination
Subject
Suggested Citation
Vu DT, Nguyen NK, Semail E, Wu H. Adaline-Based Control Schemes for Non-Sinusoidal Multiphase Drives−Part I: Torque Optimization for Healthy Mode. (2023). LAPSE:2023.16840
Author Affiliations
Vu DT: University Lille, Arts et Métiers Institute of Technology, Central Lille, Junia, ULR 2697−L2EP, F-59000 Lille, France; Faculty of Electrical Engineering, Thai Nguyen University of Technology, No. 666, 3-2 Street, Thai Nguyen 250000, Vietnam [ORCID]
Nguyen NK: University Lille, Arts et Métiers Institute of Technology, Central Lille, Junia, ULR 2697−L2EP, F-59000 Lille, France [ORCID]
Semail E: University Lille, Arts et Métiers Institute of Technology, Central Lille, Junia, ULR 2697−L2EP, F-59000 Lille, France [ORCID]
Wu H: University Lille, Arts et Métiers Institute of Technology, Central Lille, Junia, ULR 2697−L2EP, F-59000 Lille, France [ORCID]
Nguyen NK: University Lille, Arts et Métiers Institute of Technology, Central Lille, Junia, ULR 2697−L2EP, F-59000 Lille, France [ORCID]
Semail E: University Lille, Arts et Métiers Institute of Technology, Central Lille, Junia, ULR 2697−L2EP, F-59000 Lille, France [ORCID]
Wu H: University Lille, Arts et Métiers Institute of Technology, Central Lille, Junia, ULR 2697−L2EP, F-59000 Lille, France [ORCID]
Journal Name
Energies
Volume
14
Issue
24
First Page
8302
Year
2021
Publication Date
2021-12-09
ISSN
1996-1073
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Original Submission
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PII: en14248302, Publication Type: Journal Article
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LAPSE:2023.16840
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https://doi.org/10.3390/en14248302
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