Particle swarm optimization trained artificial neural network to control shunt active power filter based on multilevel flying capacitor inverter

被引:1
|
作者
Djerboub K. [1 ]
Allaoui T. [1 ]
Champenois G. [2 ]
Denai M. [3 ]
Habib C. [1 ]
机构
[1] Department of Electrical Engineering, L2GEGI Laboratory, University of Tiaret, Tiaret
[2] Laboratoire d'Informatique et d'Automatique pour les Systèmes, University of Poitiers, Poitiers
[3] School of Engineering &Computer Science, University of Hertfordshire, Hertfordshire
关键词
ANN-PSO; Flying Capacitor Inverter (FCI); Non-linear load; Power quality; SAPF; Synchronous Reference Frame (SRF); THD;
D O I
10.18280/ejee.220301
中图分类号
学科分类号
摘要
Shunt Active Power Filters (SAPF) are an emerging power electronics-based technology to mitigate harmonic and improve power quality in distribution grids. The SAPF proposed in this paper is based on three-phase Flying Capacitor Inverter (FCI) with a three-cell per phase topology, which has the advantage to provide voltage stress distribution on the switches. However, controlling the voltage of floating capacitors is a challenging problem for this type of topology. In this paper, a controller based artificial neural networks optimized with particle swarm optimization (ANN-PSO) is proposed to regulate the filter currents to follow the references extracted by the method of synchronous reference frame (SRF). The simulation results showed an enhancement of the power quality with a significant reduction in the THD levels of the current source under various loading conditions, which confirms the effectiveness, and robustness of the proposed control scheme and SAPF topology. © 2020 International Information and Engineering Technology Association. All rights reserved.
引用
收藏
页码:199 / 207
页数:8
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