LAPSE:2023.12662
Published Article

LAPSE:2023.12662
High-Performance Fractional Order PIMR-Type Repetitive Control for a Grid-Tied Inverter
February 28, 2023
Abstract
Low switching frequency is usually used in high-power wind grid-tied inverter systems to reduce power loss caused by on−off switching activity. Proportional integral multi-resonant type repetitive control (PIMR-type RC) can track reference grid current signals and suppress harmonic signals of grid-tied inverter system. A low switching frequency will result in a low sampling rate of control system. However, integer-order phase-lead compensation will lead to a poor compensation accuracy of PIMR-type RC with a low sampling rate, leading to poor tracking and suppressing performance of PIMR-type RC, and even result in system instability. To solve these problems, a high-performance fractional-order phase-lead compensation PIMR-type RC (FO-PIMR-RC) scheme is proposed in this paper. Fractional-order phase-lead compensation is adopted to compensate accurately the phase lag caused by controlled plant and PIMR-type RC and approximately realized by a finite impulse response (FIR) filter. Stability analysis and harmonic suppression performance are provided, and the parameter optimization design is implemented. Simulation and experimental results prove the desirable performance of the proposed control scheme.
Low switching frequency is usually used in high-power wind grid-tied inverter systems to reduce power loss caused by on−off switching activity. Proportional integral multi-resonant type repetitive control (PIMR-type RC) can track reference grid current signals and suppress harmonic signals of grid-tied inverter system. A low switching frequency will result in a low sampling rate of control system. However, integer-order phase-lead compensation will lead to a poor compensation accuracy of PIMR-type RC with a low sampling rate, leading to poor tracking and suppressing performance of PIMR-type RC, and even result in system instability. To solve these problems, a high-performance fractional-order phase-lead compensation PIMR-type RC (FO-PIMR-RC) scheme is proposed in this paper. Fractional-order phase-lead compensation is adopted to compensate accurately the phase lag caused by controlled plant and PIMR-type RC and approximately realized by a finite impulse response (FIR) filter. Stability analysis and harmonic suppression performance are provided, and the parameter optimization design is implemented. Simulation and experimental results prove the desirable performance of the proposed control scheme.
Record ID
Keywords
finite impulse response, fractional phase-lead compensation, grid-tied inverter, low phase resolution, PIMR-type RC
Subject
Suggested Citation
Yu J, Zhao Q, Li H, Yue X, Wen S. High-Performance Fractional Order PIMR-Type Repetitive Control for a Grid-Tied Inverter. (2023). LAPSE:2023.12662
Author Affiliations
Yu J: Zhongyuan-Petersburg Aviation College, Zhongyuan University of Technology, Zhengzhou 450007, China [ORCID]
Zhao Q: School of Electronic and Information, Zhongyuan University of Technology, Zhengzhou 450007, China
Li H: Deparment of Electronic and Computer Engineering, Ritsumeikan University, Kusatsu 525-0058, Shiga, Japan
Yue X: Deparment of Electronic and Computer Engineering, Ritsumeikan University, Kusatsu 525-0058, Shiga, Japan [ORCID]
Wen S: Zhongyuan-Petersburg Aviation College, Zhongyuan University of Technology, Zhengzhou 450007, China
Zhao Q: School of Electronic and Information, Zhongyuan University of Technology, Zhengzhou 450007, China
Li H: Deparment of Electronic and Computer Engineering, Ritsumeikan University, Kusatsu 525-0058, Shiga, Japan
Yue X: Deparment of Electronic and Computer Engineering, Ritsumeikan University, Kusatsu 525-0058, Shiga, Japan [ORCID]
Wen S: Zhongyuan-Petersburg Aviation College, Zhongyuan University of Technology, Zhengzhou 450007, China
Journal Name
Energies
Volume
15
Issue
11
First Page
3854
Year
2022
Publication Date
2022-05-24
ISSN
1996-1073
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PII: en15113854, Publication Type: Journal Article
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LAPSE:2023.12662
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https://doi.org/10.3390/en15113854
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Feb 28, 2023
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