Model Predictive Direct Power Control for Nonredundant Fault Tolerant Grid-Connected Bidirectional Voltage Source Converter

This paper proposes a model predictive direct power control scheme for nonredundant fault tolerant grid-connected bidirectional voltage source converter (BVSC) with balanced dc-link split capacitor voltage and high reliability. Based on the operation analysis of fault-tolerant BVSC with phase leg fa...

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Main Authors: Nan Jin, Leilei Guo, Gang Yao
Format: Article
Language:English
Published: MDPI AG 2017-08-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/10/8/1133
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spelling doaj-88814c978f414153b0bdd6038afdd3ec2020-11-24T23:12:21ZengMDPI AGEnergies1996-10732017-08-01108113310.3390/en10081133en10081133Model Predictive Direct Power Control for Nonredundant Fault Tolerant Grid-Connected Bidirectional Voltage Source ConverterNan Jin0Leilei Guo1Gang Yao2Department of Electrical Engineering, Zhengzhou University of Light Industry, Zhengzhou 450002, ChinaDepartment of Electrical Engineering, Zhengzhou University of Light Industry, Zhengzhou 450002, ChinaDepartment of Electrical Engineering, Shanghai Jiao Tong University, Shanghai 200240, ChinaThis paper proposes a model predictive direct power control scheme for nonredundant fault tolerant grid-connected bidirectional voltage source converter (BVSC) with balanced dc-link split capacitor voltage and high reliability. Based on the operation analysis of fault-tolerant BVSC with phase leg faults, a power predictive model of three-phase four-switch fault-tolerant topology in αβ coordinates is established, and the space voltage vectors with unbalanced dc-link split capacitor voltage are analyzed. According to the power predictive model and cost function, the optimal space voltage vector is selected to achieve a flexible, smooth transition between inverter and rectifier mode with direct power control. Pulse width modulation and phase locked loop are not required in the proposed method. The constraint of dc-link voltage constraint is designed for the cost function to achieve a central point of dc-link voltage offset suppression, which can reduce the risk of electrolytic capacitor failure for over-voltage operation. With the proposed control method, the converter can work continuously in both inverter mode and rectifier mode, even if phase leg faults occur. The simulation and experimental results show good steady-state and dynamic performance of the proposed control scheme to enhance the reliability of bidirectional power conversion.https://www.mdpi.com/1996-1073/10/8/1133bidirectional voltage source convertermodel predictive controlthree-phase four-switchfault tolerantopen circuits faults
collection DOAJ
language English
format Article
sources DOAJ
author Nan Jin
Leilei Guo
Gang Yao
spellingShingle Nan Jin
Leilei Guo
Gang Yao
Model Predictive Direct Power Control for Nonredundant Fault Tolerant Grid-Connected Bidirectional Voltage Source Converter
Energies
bidirectional voltage source converter
model predictive control
three-phase four-switch
fault tolerant
open circuits faults
author_facet Nan Jin
Leilei Guo
Gang Yao
author_sort Nan Jin
title Model Predictive Direct Power Control for Nonredundant Fault Tolerant Grid-Connected Bidirectional Voltage Source Converter
title_short Model Predictive Direct Power Control for Nonredundant Fault Tolerant Grid-Connected Bidirectional Voltage Source Converter
title_full Model Predictive Direct Power Control for Nonredundant Fault Tolerant Grid-Connected Bidirectional Voltage Source Converter
title_fullStr Model Predictive Direct Power Control for Nonredundant Fault Tolerant Grid-Connected Bidirectional Voltage Source Converter
title_full_unstemmed Model Predictive Direct Power Control for Nonredundant Fault Tolerant Grid-Connected Bidirectional Voltage Source Converter
title_sort model predictive direct power control for nonredundant fault tolerant grid-connected bidirectional voltage source converter
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2017-08-01
description This paper proposes a model predictive direct power control scheme for nonredundant fault tolerant grid-connected bidirectional voltage source converter (BVSC) with balanced dc-link split capacitor voltage and high reliability. Based on the operation analysis of fault-tolerant BVSC with phase leg faults, a power predictive model of three-phase four-switch fault-tolerant topology in αβ coordinates is established, and the space voltage vectors with unbalanced dc-link split capacitor voltage are analyzed. According to the power predictive model and cost function, the optimal space voltage vector is selected to achieve a flexible, smooth transition between inverter and rectifier mode with direct power control. Pulse width modulation and phase locked loop are not required in the proposed method. The constraint of dc-link voltage constraint is designed for the cost function to achieve a central point of dc-link voltage offset suppression, which can reduce the risk of electrolytic capacitor failure for over-voltage operation. With the proposed control method, the converter can work continuously in both inverter mode and rectifier mode, even if phase leg faults occur. The simulation and experimental results show good steady-state and dynamic performance of the proposed control scheme to enhance the reliability of bidirectional power conversion.
topic bidirectional voltage source converter
model predictive control
three-phase four-switch
fault tolerant
open circuits faults
url https://www.mdpi.com/1996-1073/10/8/1133
work_keys_str_mv AT nanjin modelpredictivedirectpowercontrolfornonredundantfaulttolerantgridconnectedbidirectionalvoltagesourceconverter
AT leileiguo modelpredictivedirectpowercontrolfornonredundantfaulttolerantgridconnectedbidirectionalvoltagesourceconverter
AT gangyao modelpredictivedirectpowercontrolfornonredundantfaulttolerantgridconnectedbidirectionalvoltagesourceconverter
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