A rule-based expert system for harmonic load recognition

K. Umeh, A. Mohamed
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引用次数: 2

Abstract

This paper presents a new method for identifying the different types of single phase nonlinear loads as sources of harmonic disturbances in a power system. The method combines the use of signal processing and artificial intelligence techniques. Fast Fourier transform and fractal analyses have been used to extract features of the harmonic signatures of the various nonlinear loads from the sampled input current waveforms. Intelligent and automatic harmonic load recognition process is achieved by using a rule-based expert system. The expert system has been verified using real measurements and the results show that the system give accurate identification of the single phase nonlinear loads such as personal computer, fluorescent lights, uninterruptible power supply and oscilloscope.
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基于规则的谐波负荷识别专家系统
本文提出了一种识别电力系统中不同类型的单相非线性负荷作为谐波干扰源的新方法。该方法结合了信号处理和人工智能技术的使用。利用快速傅立叶变换和分形分析方法,从采样的输入电流波形中提取了各种非线性负载的谐波特征。采用基于规则的专家系统实现谐波负荷识别的智能化和自动化。实际测量结果表明,该系统能准确识别个人电脑、荧光灯、不间断电源和示波器等单相非线性负载。
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