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Classification of Power Quality Disturbances Due to Environmental Characteristics in Distributed Generation System

机译:分布式发电系统中因环境特性引起的电能质量扰动分类

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摘要

The interconnection of the renewable-resources-based distributed generation (DG) system to the existing power system could lead to power quality (PQ) problems, degradation in system reliability, and other associated issues. This paper presents the classification of PQ disturbances caused not only by change in load but also by environmental characteristics such as change in solar insolation and wind speed. Various forms of sag and swell occurrences caused by change in load, variation in wind speed, and solar insolation are considered in the study. Ten different statistical features extracted through S-transform are used in the classification step. The PQ disturbances in terms of statistical features are classified distinctly by use of modular probabilistic neural network (MPNN), support vector machines (SVMs), and least square support vector machines (LS-SVMs) techniques. The classification study is further supported by experimental signals obtained on a prototype setup of wind energy system and PV system. The accuracy and reliability of classification techniques is also assessed on signals corrupted with noise.
机译:基于可再生资源的分布式发电(DG)系统与现有电力系统的互连可能导致电力质量(PQ)问题,系统可靠性下降以及其他相关问题。本文介绍了不仅由负载变化引起的PQ干扰的分类,而且还归因于日照强度和风速的变化等环境特征。在研究中考虑了由载荷变化,风速变化和日照引起的各种形式的下垂和隆起。在分类步骤中使用了通过S变换提取的十种不同的统计特征。通过使用模块化概率神经网络(MPNN),支持向量机(SVM)和最小二乘支持向量机(LS-SVM)技术,可以根据统计特征对PQ干扰进行分类。在风能系统和光伏系统的原型装置上获得的实验信号进一步支持了分类研究。分类技术的准确性和可靠性也可以根据被噪声破坏的信号进行评估。

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