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Finite Element Analysis based model to study the electric field distribution and leakage current in PV modules under high voltage bias

机译:基于有限元分析在高压偏压下PV模块中的电场分布和漏电流研究

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The maximum system voltage for Photovoltaic systems is 1000 V in US. Some modules are designed to operate even at 1500 V, which is the limit for IEC low voltage systems. The high voltage bias between the cell circuit and frame of the module leads to a leakage current flowing through the insulation of the module to the ground. Over time, this leakage current causes migration of various species to and from the cell circuit, can result in slow degradation of the performance of PV module. It is important to understand the electric field distribution and leakage current pathways in the PV modules in order to study the system voltage induced degradation of PV modules. The leakage current from the PV modules deployed outdoor and under high voltage bias strongly varies with the environmental conditions. The lumped resistance models described in literature that attempt to explain the leakage current flow through the PV module do not provide adequate information about the distribution of leakage current through different layers of insulation present in the PV modules. In this paper, a Finite Element Analysis (FEA) based model for the insulation of PV module is described. It yields useful information about the distribution of electric field, potential and leakage current flowing through different layers of module. The model is also used to predict and analyze the changes in leakage current with changes in module packaging materials and grounding configurations.
机译:光伏系统的最大系统电压在US中为1000V。一些模块旨在运行即使在1500 V,这是IEC低压系统的限制。电池电路和模块的框架之间的高压偏压导致漏电流流过模块的绝缘到地。随着时间的推移,这种漏电流会导致各种物种迁移到电池电路,可能导致光伏模块性能的缓慢劣化。重要的是要了解PV模块中的电场分布和漏电流途径,以研究PV模块的系统电压致力抗降解。从户外和在高压偏压下部署的光伏模块的漏电流强烈地随环境条件而变化。尝试解释通过PV模块的漏电流的文献中描述的集成电阻模型不提供关于通过PV模块中存在的不同层的漏电流分布的适当信息。在本文中,描述了一种用于PV模块绝缘的基于有限元分析(FEA)模型。它产生有关电场分布的有用信息,流过不同层的不同层的电场,电位和漏电流。该模型还用于预测和分析漏电流的变化与模块包装材料和接地配置的变化。

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