A Dual-Voltage-Vector Model-Free Predictive Current Controller for Synchronous Reluctance Motor Drive Systems

For current control in power conversion and motor drive systems, there exist three classic methods in the literature and they are the hysteresis current control (HCC), the sine pulse-width modulation (SPWM), and the space vector pulse width modulation (SVPWM). HCC is easy to implement, but has relat...

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Main Authors: Cheng-Kai Lin, Jen-te Yu, Hao-Qun Huang, Jyun-Ting Wang, Hsing-Cheng Yu, Yen-Shin Lai
Format: Article
Language:English
Published: MDPI AG 2018-07-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/11/7/1743
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spelling doaj-7f792c4649a14200973e9bd59c2ab05d2020-11-25T00:47:37ZengMDPI AGEnergies1996-10732018-07-01117174310.3390/en11071743en11071743A Dual-Voltage-Vector Model-Free Predictive Current Controller for Synchronous Reluctance Motor Drive SystemsCheng-Kai Lin0Jen-te Yu1Hao-Qun Huang2Jyun-Ting Wang3Hsing-Cheng Yu4Yen-Shin Lai5Department of Electrical Engineering, National Taiwan Ocean University, Keelung 202, TaiwanDepartment of Electrical Engineering, Chung Yuan Christian University, Taoyuan 320, TaiwanDepartment of Electrical Engineering, National Taiwan Ocean University, Keelung 202, TaiwanDepartment of Electrical Engineering, National Taiwan Ocean University, Keelung 202, TaiwanDepartment of Systems Engineering and Naval Architecture, National Taiwan Ocean University, Keelung 202, TaiwanDepartment of Electrical Engineering, National Taipei University of Technology, Taipei 106, TaiwanFor current control in power conversion and motor drive systems, there exist three classic methods in the literature and they are the hysteresis current control (HCC), the sine pulse-width modulation (SPWM), and the space vector pulse width modulation (SVPWM). HCC is easy to implement, but has relatively large current harmonic distortion as the disadvantage. On the other hand, the SPWM and SVPWM use modulation technique, commonly together with at least one proportional-integral (PI) regulator to reduce load current ripples, and hence demanding more computation time. This paper aims to improve the performance of a recently proposed new current control method—the single-voltage-vector model predictive current control (SVV-MPCC), for synchronous reluctance motor (SynRMs) drives. To that end, a dual-voltage-vector model-free predictive current control (DVV-MFPCC) for SynRMs is proposed. Unlike the SVV-MPCC that applies only a single voltage vector per sampling period, the proposed DVV-MFPCC is capable of providing two successive segmentary current predictions in the next sampling period through all possible combinations from any two candidate switching states increasing the number of applicable switching modes from seven to nineteen and reducing the prediction error effectively. Moreover, the new control does not utilize any parameters of the SynRM nor its mathematical model. The performance is effectively enhanced compared to that of SVV-MPCC. The working principle of the DVV-MFPCC will be detailed in this paper. Finally, the SVV-MPCC, the single-voltage-vector model-free predictive current control (SVV-MFPCC), the dual-voltage-vector model predictive current control (DVV-MPCC), and the DVV-MFPCC are realized to control the stator currents of SynRM through a 32-bit microcontroller TMS320F28377S. Experimental results are provided to validate the new method and verify that the DVV-MFPCC performs better than do the SVV-MPCC, the SVV-MFPCC, and the DVV-MPCC.http://www.mdpi.com/1996-1073/11/7/1743predictive current controlsynchronous reluctance motorvoltage source inverter
collection DOAJ
language English
format Article
sources DOAJ
author Cheng-Kai Lin
Jen-te Yu
Hao-Qun Huang
Jyun-Ting Wang
Hsing-Cheng Yu
Yen-Shin Lai
spellingShingle Cheng-Kai Lin
Jen-te Yu
Hao-Qun Huang
Jyun-Ting Wang
Hsing-Cheng Yu
Yen-Shin Lai
A Dual-Voltage-Vector Model-Free Predictive Current Controller for Synchronous Reluctance Motor Drive Systems
Energies
predictive current control
synchronous reluctance motor
voltage source inverter
author_facet Cheng-Kai Lin
Jen-te Yu
Hao-Qun Huang
Jyun-Ting Wang
Hsing-Cheng Yu
Yen-Shin Lai
author_sort Cheng-Kai Lin
title A Dual-Voltage-Vector Model-Free Predictive Current Controller for Synchronous Reluctance Motor Drive Systems
title_short A Dual-Voltage-Vector Model-Free Predictive Current Controller for Synchronous Reluctance Motor Drive Systems
title_full A Dual-Voltage-Vector Model-Free Predictive Current Controller for Synchronous Reluctance Motor Drive Systems
title_fullStr A Dual-Voltage-Vector Model-Free Predictive Current Controller for Synchronous Reluctance Motor Drive Systems
title_full_unstemmed A Dual-Voltage-Vector Model-Free Predictive Current Controller for Synchronous Reluctance Motor Drive Systems
title_sort dual-voltage-vector model-free predictive current controller for synchronous reluctance motor drive systems
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2018-07-01
description For current control in power conversion and motor drive systems, there exist three classic methods in the literature and they are the hysteresis current control (HCC), the sine pulse-width modulation (SPWM), and the space vector pulse width modulation (SVPWM). HCC is easy to implement, but has relatively large current harmonic distortion as the disadvantage. On the other hand, the SPWM and SVPWM use modulation technique, commonly together with at least one proportional-integral (PI) regulator to reduce load current ripples, and hence demanding more computation time. This paper aims to improve the performance of a recently proposed new current control method—the single-voltage-vector model predictive current control (SVV-MPCC), for synchronous reluctance motor (SynRMs) drives. To that end, a dual-voltage-vector model-free predictive current control (DVV-MFPCC) for SynRMs is proposed. Unlike the SVV-MPCC that applies only a single voltage vector per sampling period, the proposed DVV-MFPCC is capable of providing two successive segmentary current predictions in the next sampling period through all possible combinations from any two candidate switching states increasing the number of applicable switching modes from seven to nineteen and reducing the prediction error effectively. Moreover, the new control does not utilize any parameters of the SynRM nor its mathematical model. The performance is effectively enhanced compared to that of SVV-MPCC. The working principle of the DVV-MFPCC will be detailed in this paper. Finally, the SVV-MPCC, the single-voltage-vector model-free predictive current control (SVV-MFPCC), the dual-voltage-vector model predictive current control (DVV-MPCC), and the DVV-MFPCC are realized to control the stator currents of SynRM through a 32-bit microcontroller TMS320F28377S. Experimental results are provided to validate the new method and verify that the DVV-MFPCC performs better than do the SVV-MPCC, the SVV-MFPCC, and the DVV-MPCC.
topic predictive current control
synchronous reluctance motor
voltage source inverter
url http://www.mdpi.com/1996-1073/11/7/1743
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