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One-type-fits-all-systems: Strategies for preventing potential-induced degradation in crystalline silicon solar photovoltaic modules

机译:一类适合的全系统:防止晶体硅太阳能光伏模块中潜在诱导的降解的策略

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In this work, we investigate the relationship between potential-induced degradation (PID) and the bill of material used in module manufacturing. We manufacture samples with different combination of materials, using two types of solar cells (conventional vs PID-free c-Si cells), two types of ethylene-vinyl acetate (EVA) films with low/high resistivity, and two types of backsheets with, respectively, low/high breathability properties, and subject the mini-modules to extended PID testing. Our results clearly indicate that, when using a breathable polymeric backsheet, to have a "PID-free" module the combination of PID-free cells and high-resistive EVA encapsulants is recommendable. The use of a conventional c-Si cell in combination with a high-resistive EVA encapsulant is still more effective than the use of PID-free cells in combination with low-quality EVA. Further, our results initially show that the breathability properties of the backsheet have apparently no influence on PID degradation. A second set of experiments using sandwich structures with increased resistance properties to water ingress (ie, glass and backsheets with barrier layers as rear covers and an edge sealant), however, indicates that preventing or reducing the diffusion of moisture in the encapsulant layer plays a role in further mitigating the impact of PID. This finding is supported by simulations of moisture ingress in the sandwich structures. Finally, we show that the use of a glass rear cover-compared with a polymeric backsheet-does not contribute in worsening the PID effect. On the contrary, by reducing moisture ingress in the front encapsulant layer, it delays the occurrence of PID.
机译:在这项工作中,我们研究了模块制造中使用的潜在降解(PID)和材料清单之间的关系。我们使用两种类型的太阳能电池(常规与PID C-Si细胞),两种类型的乙烯 - 乙酸乙酯(EVA)膜,具有低/高电阻率的乙烯 - 乙酸乙酯(EVA)膜,以及两种类型的底片分别低/高透气性,并将迷你模块进行扩展的PID测试。我们的结果清楚地表明,当使用透气聚合物背板时,具有“无PID”模块,可以推荐无皮细胞和高电阻EVA密封剂的组合。使用常规的C-Si细胞与高电阻EVA密封剂的组合比使用无皮细胞与低质量EVA的使用更有效。此外,我们的结果最初表明底片的透气性质显然对PID降解没有影响。然而,使用夹层结构的第二组实验,其具有增加的电阻性能与水进入(即具有屏蔽层的玻璃和背板和边缘密封剂的玻璃和底片)表明防止或减少了密封剂层中的水分的扩散在进一步减轻PID的影响方面的作用。这种发现得到了夹层结构中的水分进入的支持。最后,我们表明使用玻璃后盖与聚合物背板相比 - 不会导致恶化PID效果。相反,通过减少前密封剂层中的水分进入,它延迟了PID的发生。

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