The Control Strategy of Buck-Type 3-1 MC Under Unbalanced Input Voltage

To optimize input current distortion, output voltage fluctuation, and other problems caused by a three-phase to single-phase matrix converter (3-1 MC) under unbalanced input voltage, the harmonic characteristic of the 3-1 MC input current is analyzed. A control strategy based on virtual dc current i...

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Main Authors: Hai Guo, Hongjuan Ge, Yuxiang Xu
Format: Article
Language:English
Published: IEEE 2018-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8240891/
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spelling doaj-21fca9f7fc08460f91193a6ac158f8742021-03-29T20:35:25ZengIEEEIEEE Access2169-35362018-01-0166316632610.1109/ACCESS.2017.27876038240891The Control Strategy of Buck-Type 3-1 MC Under Unbalanced Input VoltageHai Guo0https://orcid.org/0000-0001-5164-0217Hongjuan Ge1Yuxiang Xu2Nanjing University of Aeronautics and Astronautics, Nanjing, ChinaNanjing University of Aeronautics and Astronautics, Nanjing, ChinaNanjing University of Aeronautics and Astronautics, Nanjing, ChinaTo optimize input current distortion, output voltage fluctuation, and other problems caused by a three-phase to single-phase matrix converter (3-1 MC) under unbalanced input voltage, the harmonic characteristic of the 3-1 MC input current is analyzed. A control strategy based on virtual dc current is proposed using input positive-sequence voltage as current reference vector, which avoids the dividing error of input sector by the positive-sequence voltage as reference vector. Through dynamic modulation ratio and stable output voltage, a pseudo-dc current is synthesized after the output phase current and decoupling phase current are modulated. A closed-loop control system is designed using the virtual dc current and deduced 3-1 MC mathematical model. Finally, the control strategy is validated by simulations and experiments and the control target of the input current harmonic and output voltage stability is achieved. The effectiveness and practicability of the control strategy are confirmed.https://ieeexplore.ieee.org/document/8240891/Power compensationthree-phase to single-phase matrix convertervirtual dc currentclosed-loop control
collection DOAJ
language English
format Article
sources DOAJ
author Hai Guo
Hongjuan Ge
Yuxiang Xu
spellingShingle Hai Guo
Hongjuan Ge
Yuxiang Xu
The Control Strategy of Buck-Type 3-1 MC Under Unbalanced Input Voltage
IEEE Access
Power compensation
three-phase to single-phase matrix converter
virtual dc current
closed-loop control
author_facet Hai Guo
Hongjuan Ge
Yuxiang Xu
author_sort Hai Guo
title The Control Strategy of Buck-Type 3-1 MC Under Unbalanced Input Voltage
title_short The Control Strategy of Buck-Type 3-1 MC Under Unbalanced Input Voltage
title_full The Control Strategy of Buck-Type 3-1 MC Under Unbalanced Input Voltage
title_fullStr The Control Strategy of Buck-Type 3-1 MC Under Unbalanced Input Voltage
title_full_unstemmed The Control Strategy of Buck-Type 3-1 MC Under Unbalanced Input Voltage
title_sort control strategy of buck-type 3-1 mc under unbalanced input voltage
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2018-01-01
description To optimize input current distortion, output voltage fluctuation, and other problems caused by a three-phase to single-phase matrix converter (3-1 MC) under unbalanced input voltage, the harmonic characteristic of the 3-1 MC input current is analyzed. A control strategy based on virtual dc current is proposed using input positive-sequence voltage as current reference vector, which avoids the dividing error of input sector by the positive-sequence voltage as reference vector. Through dynamic modulation ratio and stable output voltage, a pseudo-dc current is synthesized after the output phase current and decoupling phase current are modulated. A closed-loop control system is designed using the virtual dc current and deduced 3-1 MC mathematical model. Finally, the control strategy is validated by simulations and experiments and the control target of the input current harmonic and output voltage stability is achieved. The effectiveness and practicability of the control strategy are confirmed.
topic Power compensation
three-phase to single-phase matrix converter
virtual dc current
closed-loop control
url https://ieeexplore.ieee.org/document/8240891/
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