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Fault Diagnosis in Photovoltaic Arrays Using GBSSL Method and Proposing a Fault Correction System

机译:使用GBSSL方法和提出故障校正系统光伏阵列的故障诊断

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Nonlinear characteristics of solar cells and changes in environmental conditions, such as temperature, and in particular, the intensity of daytime irradiation, make it difficult to identify faults by the conventional means of protection. Therefore, a variety of machine learning techniques are proposed for fault detection in photovoltaic (PV) arrays. In this regard, classifying and identifying the location of a fault event is essential. In addition to fault recognition, selecting the method of fault correction is another issue to be addressed. However, there are scarce investigations in this field. In this paper, a comprehensive method for identifying, classifying, locating, and correcting faults is introduced. The proposed method is assessed with the expansion of the diagnostic space of the graph-based semisupervised learning algorithm and an increased number of class labels. After identifying the type and location of a fault, the system temporarily isolates the fault to function without interruption until it is fully corrected. The problem of overlapping cell data in normal and fault-prone modes is resolved by applying different methods of normalization. The results show that all faults including unlearned and learned in a wide range of environmental conditions, where possible PV arrays are experienced, are properly identified and corrected. Moreover, our studies demonstrate that the proposed system mitigates the output voltage variations over a fault-prone mode.
机译:太阳能电池的非线性特性以及环境条件的变化,如温度,特别是白天照射的强度,使得通过传统的保护手段难以识别故障。因此,提出了各种机器学习技术,用于光伏(PV)阵列中的故障检测。在这方面,分类和识别故障事件的位置是必不可少的。除了故障识别之外,选择故障校正方法是要解决的另一个问题。但是,这一领域存在稀缺调查。在本文中,介绍了识别,分类,定位和校正故障的综合方法。通过扩展基于图形的半经验学习算法的诊断空间和增加数量的类标签来评估所提出的方法。在识别出故障的类型和位置后,系统将故障隔离为功能,直到它完全纠正。通过应用不同的归一化方法,解决了正常和容易易于模式中重叠单元数据的问题。结果表明,所有故障,包括在各种环境条件下都有所经历的各种环境条件,有可能进行适当的识别和纠正。此外,我们的研究表明,所提出的系统在容错模式下减轻输出电压变化。

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