ANFIS‐fuzzy logic based UPQC in interconnected microgrid distribution systems: Modeling, simulation and implementation
Abstract This study focuses on the improvement of the power quality in interconnected power distribution systems using connected microgrids. The power quality issues at the secondary distribution level are addressed using a unified power quality conditioner, which aids in controlling voltage imbalan...
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doaj-95649d1a3b004a6e959c1b938954ec2c2021-04-20T13:45:12ZengWileyThe Journal of Engineering2051-33052021-02-012021161810.1049/tje2.12005ANFIS‐fuzzy logic based UPQC in interconnected microgrid distribution systems: Modeling, simulation and implementationUdaya K. Renduchintala0Chengzong Pang1Krishna M. Tatikonda2Lin Yang3Department of Electrical Engineering and Computer Science Wichita State University Wichita Kansas USADepartment of Electrical Engineering and Computer Science Wichita State University Wichita Kansas USADepartment of Electrical and Electronics Engineering Andhra Loyola Institute of Engineering and Technology Vijayawada IndiaDepartment of Electrical Power System North China Electric Power University Beijing ChinaAbstract This study focuses on the improvement of the power quality in interconnected power distribution systems using connected microgrids. The power quality issues at the secondary distribution level are addressed using a unified power quality conditioner, which aids in controlling voltage imbalances and current harmonics. Further, a power control method, adaptive network‐based fuzzy inference system, is proposed as a global solution by installing independent compensating devices at the point of common coupling. The proposed strategy can improve the power quality in traditional installations because the proposed unified power quality conditioner method maximizes power utilization and improves the efficiency of the system. The microgrids integrate renewable energy sources, which generate green energy with low loss. Case studies, a prototype, and simulations via MATLAB/Simulink are used to validate the proposed method, and the results prove the enhancement in power quality control. The proposed control strategy had a response time of 0.3 s, reduced peak voltage distortions, and restored the voltage at the interconnecting point to a normal level. The total harmonic distortion of currents decreased from 21.13% to 14.74% when a PI technique was used to control the UPQC‐P, and the proposed adaptive network‐based fuzzy inference system‐based UPQC‐P reduced the harmonic content to 2.43% from 21.13%.https://doi.org/10.1049/tje2.12005 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Udaya K. Renduchintala Chengzong Pang Krishna M. Tatikonda Lin Yang |
spellingShingle |
Udaya K. Renduchintala Chengzong Pang Krishna M. Tatikonda Lin Yang ANFIS‐fuzzy logic based UPQC in interconnected microgrid distribution systems: Modeling, simulation and implementation The Journal of Engineering |
author_facet |
Udaya K. Renduchintala Chengzong Pang Krishna M. Tatikonda Lin Yang |
author_sort |
Udaya K. Renduchintala |
title |
ANFIS‐fuzzy logic based UPQC in interconnected microgrid distribution systems: Modeling, simulation and implementation |
title_short |
ANFIS‐fuzzy logic based UPQC in interconnected microgrid distribution systems: Modeling, simulation and implementation |
title_full |
ANFIS‐fuzzy logic based UPQC in interconnected microgrid distribution systems: Modeling, simulation and implementation |
title_fullStr |
ANFIS‐fuzzy logic based UPQC in interconnected microgrid distribution systems: Modeling, simulation and implementation |
title_full_unstemmed |
ANFIS‐fuzzy logic based UPQC in interconnected microgrid distribution systems: Modeling, simulation and implementation |
title_sort |
anfis‐fuzzy logic based upqc in interconnected microgrid distribution systems: modeling, simulation and implementation |
publisher |
Wiley |
series |
The Journal of Engineering |
issn |
2051-3305 |
publishDate |
2021-02-01 |
description |
Abstract This study focuses on the improvement of the power quality in interconnected power distribution systems using connected microgrids. The power quality issues at the secondary distribution level are addressed using a unified power quality conditioner, which aids in controlling voltage imbalances and current harmonics. Further, a power control method, adaptive network‐based fuzzy inference system, is proposed as a global solution by installing independent compensating devices at the point of common coupling. The proposed strategy can improve the power quality in traditional installations because the proposed unified power quality conditioner method maximizes power utilization and improves the efficiency of the system. The microgrids integrate renewable energy sources, which generate green energy with low loss. Case studies, a prototype, and simulations via MATLAB/Simulink are used to validate the proposed method, and the results prove the enhancement in power quality control. The proposed control strategy had a response time of 0.3 s, reduced peak voltage distortions, and restored the voltage at the interconnecting point to a normal level. The total harmonic distortion of currents decreased from 21.13% to 14.74% when a PI technique was used to control the UPQC‐P, and the proposed adaptive network‐based fuzzy inference system‐based UPQC‐P reduced the harmonic content to 2.43% from 21.13%. |
url |
https://doi.org/10.1049/tje2.12005 |
work_keys_str_mv |
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