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首页> 外文期刊>Solar Energy >Degradation analysis of crystalline silicon photovoltaic modules exposed over 30 years in hot-humid climate in China
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Degradation analysis of crystalline silicon photovoltaic modules exposed over 30 years in hot-humid climate in China

机译:中国湿热气候下暴露30年的晶体硅光伏组件的降解分析

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摘要

The main object of this paper is to present the analyze of the degradation mechanism of the electrical properties and polymeric materials for a batch of crystalline-silicon photovoltaic modules, which were installed in the hot-humid region in the south of China for 30 years. Although significant degradation of polymers (EVA and back-sheet) is observed, the average power output is only 6.53% below the name plate of the modules after 30 years in the field. The analysis of electrical performance indicated that the decline of short-circuit current (Isc) is, in this case, the main cause of power degradation. The degradation of polymeric materials, first observed through visual inspection followed by several analytical methods, such as XPS, optical measurements, or measurement of the degree of crosslinking and mechanical properties, is characterized by a high degree of yellowing of the Ethylene Vinyl Acetate(EVA) and cracks of the back-sheet. In addition, some corrosion of Ag grid is also observed. The high water vapor transmission rate (WVTR) of back-sheet, and the presence of cracks, accelerated the corrosion of metal, but it does not directly result in a decrease of the power output, and no obvious degradation of the filling factor is observed. The increase of the Yellow Index of the EVA directly results in optical loss, which is believed to be the main cause of the decline of the short-circuit current. The loss in short-circuit current caused by EVA discoloration is 12.6% in average, which agrees well with that of electrical performance analysis. Failure cause analysis reveals that there is no direct relationship between the power degradation and the degradation behavior of packaging materials except EVA discoloration.
机译:本文的主要目的是对一批晶体硅光伏组件的电学性能和高分子材料的降解机理进行分析,这些组件在中国南部湿热地区安装了30多年。尽管观察到聚合物(EVA和底片)会明显降解,但在现场运行30年后,平均功率输出仅比模块铭牌低6.53%。电气性能分析表明,在这种情况下,短路电流(Isc)的下降是功率下降的主要原因。聚合物材料的降解首先通过目视观察,然后通过几种分析方法进行观察,例如XPS,光学测量或交联度和机械性能的测量,其特征在于乙烯乙酸乙烯酯(EVA)的高度泛黄)和背板的裂缝。另外,还观察到了Ag栅的一些腐蚀。背板的高水蒸气透过率(WVTR)和裂纹的出现加速了金属的腐蚀,但并没有直接导致功率输出的降低,也没有观察到填充系数的明显下降。 。 EVA的黄色指数的增加直接导致光学损耗,这被认为是短路电流下降的主要原因。 EVA变色引起的短路电流损失平均为12.6%,与电气性能分析的结果相吻合。失效原因分析表明,除EVA变色外,功率退化与包装材料的退化行为之间没有直接关系。

著录项

  • 来源
    《Solar Energy》 |2018年第8期|510-519|共10页
  • 作者单位

    Sun Yat-Sen University,ShunDe SYSU Institute for Solar Energy;

    ShunDe SYSU Institute for Solar Energy;

    ShunDe SYSU Institute for Solar Energy;

    Sun Yat-Sen University;

    Trina Solar, State Key Laboratory of PV Science and Technology;

    Xin Yang Normal University, Collaborative Innovation Center of Henan Province for Energy-Saving Building Materials;

    ShunDe SYSU Institute for Solar Energy;

    Sun Yat-Sen University,ShunDe SYSU Institute for Solar Energy;

    Sun Yat-Sen University,ShunDe SYSU Institute for Solar Energy,Jiangsu Collaborative Innovation Center of Photovoltaic Science and Engineering;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    PV module; Visual inspection; Degradation performance; Degradation analysis; Optical loss;

    机译:光伏组件;外观检查;降解性能;降解分析;光损耗;

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