Singularity detection in Solar Radiation Signal using wavelet transform

S. Regis, T. Soubdhan, R. Calif, M. Abadi, R. Blonbou
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引用次数: 2

Abstract

Solar energy converter devices such as photovoltaic cells are very sensitive to instantaneous solar radiation fluctuations. Thus rapid variation of solar radiation due to changes in the local meteorological condition can induce large amplitude fluctuations of the produced electrical power and reduce the overall efficiency of the system. When large amount of photovoltaic electricity is send into a weak or small electricity network such as island network; the electric grid security can be in jeopardy due to these power fluctuations. To palliate these difficulties, it is essential to identify the characteristic of these fluctuations in order to anticipate the eventuality of power shortage or power surge. The detection of singularity in solar radiation signal allows separating the signal in different sequences, as a function of the different meteorological conditions encountered at the measurement site. Thereby, the different sequences could be analyzed separately. For instance, a statistical analysis could be conducted in order to classify these sequences as a function of their effect on the overall efficiency of a photovoltaic system. The objective of this paper is to present an approach that uses wavelet transform analysis to detect singularities in solar radiation signal. This preliminary work set the basis for further investigation dedicated to classification of solar energy fluctuation.
基于小波变换的太阳辐射信号奇异点检测
光伏电池等太阳能转换装置对太阳辐射的瞬时波动非常敏感。因此,由于当地气象条件的变化,太阳辐射的快速变化会引起所产生的电力的大幅度波动,从而降低系统的整体效率。当大量的光伏电力被送入弱电或小岛网等小型电网时;这些电力波动会危及电网的安全。为了减轻这些困难,必须确定这些波动的特征,以便预测电力短缺或电力激增的可能性。太阳辐射信号的奇点检测可以根据测量地点遇到的不同气象条件,将不同序列的信号分离出来。因此,不同的序列可以分开分析。例如,可以进行统计分析,以便将这些序列分类为它们对光伏系统整体效率的影响的函数。本文的目的是提出一种利用小波变换分析来检测太阳辐射信号奇点的方法。这项初步工作为进一步研究太阳能量波动的分类奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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