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Fault detection in trackers for PV systems based on a pattern recognition approach

机译:基于模式识别方法的光伏系统跟踪器中的故障检测

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摘要

In many photovoltaic (PV) power plants, the PV modules are installed in trackers. In these systems, the PV modules are fixed in a mobile structure to always maintain a perpendicular position to the brightest point in the sky, obtaining in this way the maximum power from the sun, during the all day. Nevertheless, these systems are subject to problems that reduce their efficiency. Thus, visual inspection or complex methods can be used to detect this problem. However, these systems normally result in delays or are expensive. To overcome these problems, this paper proposes a new method for that detection. This, method is based on the pattern recognition analysis. Thus, through the analysis of the images of the several solar panels, the PV module that presents a problem in the tracker will be detected. The orientation of the PV modules is determined using the centroid of the PV cells after applying an image pre-processing stage. The angle is calculated using the statistical moments or by the slope of the line joining two centroids of the PV cells that are located at the vertices of the PV module. Several test cases are presented to verify the efficiency of the proposed approach.
机译:在许多光伏(PV)电厂中,PV模块都安装在跟踪器中。在这些系统中,光伏组件固定在可移动的结构中,以始终保持与天空中最亮点的垂直位置,从而在一整天内从太阳中获得最大功率。然而,这些系统存在降低其效率的问题。因此,可以使用目视检查或复杂的方法来检测此问题。然而,这些系统通常导致延迟或昂贵。为了克服这些问题,本文提出了一种新的检测方法。该方法基于模式识别分析。因此,通过分析多个太阳能电池板的图像,将检测出在跟踪器中出现问题的PV模块。在应用图像预处理阶段之后,使用PV电池的质心确定PV模块的方向。使用统计矩或通过将位于PV模块顶点处的两个PV质心连接起来的直线的斜率来计算角度。提出了几个测试案例,以验证所提出方法的效率。

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