An ADRC-Based Hardware-in-the-Loop System for Maximum Power Point Tracking of a Wind Power Generation System
To improve the efficiency of the wind power generation, this article proposes an active disturbance rejection controller (ADRC) based MPPT strategy, and establishes a LabVIEW FPGA platform based hardware-in-the-loop (HIL) test system. Firstly, the configuration, operation principle, mathematical mod...
Main Authors: | , , |
---|---|
Format: | Article |
Language: | English |
Published: |
IEEE
2020-01-01
|
Series: | IEEE Access |
Subjects: | |
Online Access: | https://ieeexplore.ieee.org/document/9295327/ |
id |
doaj-48fbd99fc6774af390a41ab4bf9d0875 |
---|---|
record_format |
Article |
spelling |
doaj-48fbd99fc6774af390a41ab4bf9d08752021-03-30T04:44:26ZengIEEEIEEE Access2169-35362020-01-01822611922613010.1109/ACCESS.2020.30450159295327An ADRC-Based Hardware-in-the-Loop System for Maximum Power Point Tracking of a Wind Power Generation SystemAihua Wu0Jing-Feng Mao1https://orcid.org/0000-0002-4236-1272Xudong Zhang2School of Mechanical Engineering, Nantong University, Nantong, ChinaKey Laboratory of Renewable Energy Equipment and Its Intelligent Measurement of Jiangsu Province, Nantong University, Nantong, ChinaKey Laboratory of Renewable Energy Equipment and Its Intelligent Measurement of Jiangsu Province, Nantong University, Nantong, ChinaTo improve the efficiency of the wind power generation, this article proposes an active disturbance rejection controller (ADRC) based MPPT strategy, and establishes a LabVIEW FPGA platform based hardware-in-the-loop (HIL) test system. Firstly, the configuration, operation principle, mathematical model and maximum power point tracking (MPPT) control strategy of the wind power generation are analyzed. According to the angular speed tracking motion equation of the wind turbine, the ADRC based MPPT strategy is designed. Secondly, the real-time simulation model of wind speed, wind turbine and PMSG, as well as MPPT rapid control prototype (RCP) are developed by using PXI-FPGA architecture on the LabVIEW RT real-time operation platform. Then, by building a power converter and connecting it to the PXI-FPGA real-time operation platform, the HIL test system is established. Finally, the HIL real-time simulation tests are conducted with various wind speed conditions. The results not only prove the correctness of ADRC based MPPT strategy, but also demonstrate that the HIL system is an efficient tool for application in wind power generation development.https://ieeexplore.ieee.org/document/9295327/Wind power generationrapid control prototypehardware-in-the-loop simulationLabVIEW FPGAactive disturbance rejection controlmaximum power point tracking |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Aihua Wu Jing-Feng Mao Xudong Zhang |
spellingShingle |
Aihua Wu Jing-Feng Mao Xudong Zhang An ADRC-Based Hardware-in-the-Loop System for Maximum Power Point Tracking of a Wind Power Generation System IEEE Access Wind power generation rapid control prototype hardware-in-the-loop simulation LabVIEW FPGA active disturbance rejection control maximum power point tracking |
author_facet |
Aihua Wu Jing-Feng Mao Xudong Zhang |
author_sort |
Aihua Wu |
title |
An ADRC-Based Hardware-in-the-Loop System for Maximum Power Point Tracking of a Wind Power Generation System |
title_short |
An ADRC-Based Hardware-in-the-Loop System for Maximum Power Point Tracking of a Wind Power Generation System |
title_full |
An ADRC-Based Hardware-in-the-Loop System for Maximum Power Point Tracking of a Wind Power Generation System |
title_fullStr |
An ADRC-Based Hardware-in-the-Loop System for Maximum Power Point Tracking of a Wind Power Generation System |
title_full_unstemmed |
An ADRC-Based Hardware-in-the-Loop System for Maximum Power Point Tracking of a Wind Power Generation System |
title_sort |
adrc-based hardware-in-the-loop system for maximum power point tracking of a wind power generation system |
publisher |
IEEE |
series |
IEEE Access |
issn |
2169-3536 |
publishDate |
2020-01-01 |
description |
To improve the efficiency of the wind power generation, this article proposes an active disturbance rejection controller (ADRC) based MPPT strategy, and establishes a LabVIEW FPGA platform based hardware-in-the-loop (HIL) test system. Firstly, the configuration, operation principle, mathematical model and maximum power point tracking (MPPT) control strategy of the wind power generation are analyzed. According to the angular speed tracking motion equation of the wind turbine, the ADRC based MPPT strategy is designed. Secondly, the real-time simulation model of wind speed, wind turbine and PMSG, as well as MPPT rapid control prototype (RCP) are developed by using PXI-FPGA architecture on the LabVIEW RT real-time operation platform. Then, by building a power converter and connecting it to the PXI-FPGA real-time operation platform, the HIL test system is established. Finally, the HIL real-time simulation tests are conducted with various wind speed conditions. The results not only prove the correctness of ADRC based MPPT strategy, but also demonstrate that the HIL system is an efficient tool for application in wind power generation development. |
topic |
Wind power generation rapid control prototype hardware-in-the-loop simulation LabVIEW FPGA active disturbance rejection control maximum power point tracking |
url |
https://ieeexplore.ieee.org/document/9295327/ |
work_keys_str_mv |
AT aihuawu anadrcbasedhardwareintheloopsystemformaximumpowerpointtrackingofawindpowergenerationsystem AT jingfengmao anadrcbasedhardwareintheloopsystemformaximumpowerpointtrackingofawindpowergenerationsystem AT xudongzhang anadrcbasedhardwareintheloopsystemformaximumpowerpointtrackingofawindpowergenerationsystem AT aihuawu adrcbasedhardwareintheloopsystemformaximumpowerpointtrackingofawindpowergenerationsystem AT jingfengmao adrcbasedhardwareintheloopsystemformaximumpowerpointtrackingofawindpowergenerationsystem AT xudongzhang adrcbasedhardwareintheloopsystemformaximumpowerpointtrackingofawindpowergenerationsystem |
_version_ |
1724181318954123264 |