A unified artificial neural network architecture for active power filters

被引:173
作者
Abdeslam, Djaffar Ould [1 ]
Wira, Patrice
Merckle, Jean
Flieller, Damien
Chapuis, Yves-Andre
机构
[1] Univ Haute Alsace, Fac Sci & Tech Lab, MIPS TROP 4, F-68093 Mulhouse, France
[2] INSA, Dept Elect Engn, F-67084 Strasbourg, France
[3] Univ Tokyo, Inst Ind Sci, Tokyo 1068558, Japan
关键词
active power filter (APF); adaptive control; artificial neural networks (ANNs); harmonics; selective compensation; three-phase electric system;
D O I
10.1109/TIE.2006.888758
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
In this paper, an efficient and reliable neural active power filter (APF) to estimate and compensate for harmonic distortions from an AC line is proposed. The proposed filter is completely based on Adaline neural networks which are organized in different independent blocks. We introduce a neural method based on Adalines for the online extraction of the voltage components to recover a balanced and equilibrated voltage system, and three different methods for harmonic filtering. These three methods efficiently separate the fundamental harmonic from the distortion harmonics of the measured currents. According to either the Instantaneous Power Theory or to the Fourier series analysis of the currents, each of these methods are based on a specific decomposition. The original decomposition of the currents or of the powers then allows defining the architecture and the inputs of Adaline neural networks. Different learning schemes are then used to control the inverter to inject elaborated reference currents in the power system. Results obtained by simulation and their real-time validation in experiments are presented to compare the compensation methods. By their learning capabilities, artificial neural networks are able to take into account time-varying parameters, and thus appreciably improve the performance of traditional compensating methods. The effectiveness of the algorithms is demonstrated in their application to harmonics compensation in power systems.
引用
收藏
页码:61 / 76
页数:16
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