Triple-Voltage-Vector Model-Free Predictive Current Control for Four-Switch Three-Phase Inverter-Fed SPMSM Based on Discrete-Space-Vector Modulation

The four-switch three-phase (FSTP) inverters are known for their cost-effective advantages and minimal switching losses. However, such inverter topology’s progress is lagging due to control constraints and requirements, including voltage vector limitations and parameter perturbations. To...

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Main Authors: Crestian Almazan Agustin, Jen-Te Yu, Cheng-Kai Lin, Jung Jai, Yen-Shin Lai
Format: Article
Language:English
Published: IEEE 2021-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9406587/
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author Crestian Almazan Agustin
Jen-Te Yu
Cheng-Kai Lin
Jung Jai
Yen-Shin Lai
author_facet Crestian Almazan Agustin
Jen-Te Yu
Cheng-Kai Lin
Jung Jai
Yen-Shin Lai
author_sort Crestian Almazan Agustin
collection DOAJ
description The four-switch three-phase (FSTP) inverters are known for their cost-effective advantages and minimal switching losses. However, such inverter topology’s progress is lagging due to control constraints and requirements, including voltage vector limitations and parameter perturbations. To overcome the issue, this paper proposes a triple-voltage-vector model-free predictive current control (TVV-MFPCC) for FSTP inverter-fed surface permanent magnet synchronous motor (SPMSM) drives. The proposed TVV-MFPCC uses the principle of discrete-space-vector modulation (DSVM) to increase the voltage vector selections. Three primary voltage vectors, either the same or distinct, are linearly combined to yield the synthesized voltage vectors. A redundant voltage vector reduction scheme is also introduced to lessen calculations by optimally reducing the candidate voltage vectors to sixteen equivalent hybrid switching modes. To improve prediction accuracy, the TVV-MFPCC performs three different current readings and three current difference calculations in each sampling period. Experiments using a TMS320F28379D microcontroller are conducted to compare the performance of the proposed TVV-MFPCC against conventional MFPCC (C-MFPCC) and validate the scheme.
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spelling doaj.art-2bfd3a74602b4d838489dabf1de7aba92022-12-21T21:24:06ZengIEEEIEEE Access2169-35362021-01-019603526036310.1109/ACCESS.2021.30740679406587Triple-Voltage-Vector Model-Free Predictive Current Control for Four-Switch Three-Phase Inverter-Fed SPMSM Based on Discrete-Space-Vector ModulationCrestian Almazan Agustin0https://orcid.org/0000-0002-5777-9794Jen-Te Yu1https://orcid.org/0000-0002-0664-5681Cheng-Kai Lin2https://orcid.org/0000-0002-6351-7475Jung Jai3https://orcid.org/0000-0002-8601-5929Yen-Shin Lai4https://orcid.org/0000-0002-6490-3001Department of Electrical Engineering, National Taiwan Ocean University, Keelung, TaiwanDepartment of Electrical Engineering, Chung Yuan Christian University, Taoyuan City, TaiwanDepartment of Electrical Engineering, National Taiwan Ocean University, Keelung, TaiwanDepartment of Electrical Engineering, National Taiwan Ocean University, Keelung, TaiwanDepartment of Electrical Engineering, National Taipei University of Technology, Taipei, TaiwanThe four-switch three-phase (FSTP) inverters are known for their cost-effective advantages and minimal switching losses. However, such inverter topology’s progress is lagging due to control constraints and requirements, including voltage vector limitations and parameter perturbations. To overcome the issue, this paper proposes a triple-voltage-vector model-free predictive current control (TVV-MFPCC) for FSTP inverter-fed surface permanent magnet synchronous motor (SPMSM) drives. The proposed TVV-MFPCC uses the principle of discrete-space-vector modulation (DSVM) to increase the voltage vector selections. Three primary voltage vectors, either the same or distinct, are linearly combined to yield the synthesized voltage vectors. A redundant voltage vector reduction scheme is also introduced to lessen calculations by optimally reducing the candidate voltage vectors to sixteen equivalent hybrid switching modes. To improve prediction accuracy, the TVV-MFPCC performs three different current readings and three current difference calculations in each sampling period. Experiments using a TMS320F28379D microcontroller are conducted to compare the performance of the proposed TVV-MFPCC against conventional MFPCC (C-MFPCC) and validate the scheme.https://ieeexplore.ieee.org/document/9406587/Discrete-space-vector modulationfour-switch three-phase invertermodel predictive current controlmodel-free predictive controltriple-voltage-vector
spellingShingle Crestian Almazan Agustin
Jen-Te Yu
Cheng-Kai Lin
Jung Jai
Yen-Shin Lai
Triple-Voltage-Vector Model-Free Predictive Current Control for Four-Switch Three-Phase Inverter-Fed SPMSM Based on Discrete-Space-Vector Modulation
IEEE Access
Discrete-space-vector modulation
four-switch three-phase inverter
model predictive current control
model-free predictive control
triple-voltage-vector
title Triple-Voltage-Vector Model-Free Predictive Current Control for Four-Switch Three-Phase Inverter-Fed SPMSM Based on Discrete-Space-Vector Modulation
title_full Triple-Voltage-Vector Model-Free Predictive Current Control for Four-Switch Three-Phase Inverter-Fed SPMSM Based on Discrete-Space-Vector Modulation
title_fullStr Triple-Voltage-Vector Model-Free Predictive Current Control for Four-Switch Three-Phase Inverter-Fed SPMSM Based on Discrete-Space-Vector Modulation
title_full_unstemmed Triple-Voltage-Vector Model-Free Predictive Current Control for Four-Switch Three-Phase Inverter-Fed SPMSM Based on Discrete-Space-Vector Modulation
title_short Triple-Voltage-Vector Model-Free Predictive Current Control for Four-Switch Three-Phase Inverter-Fed SPMSM Based on Discrete-Space-Vector Modulation
title_sort triple voltage vector model free predictive current control for four switch three phase inverter fed spmsm based on discrete space vector modulation
topic Discrete-space-vector modulation
four-switch three-phase inverter
model predictive current control
model-free predictive control
triple-voltage-vector
url https://ieeexplore.ieee.org/document/9406587/
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