多层光伏背板在室外和实验室加速老化后机械和化学降解的相关性

Chiao-Chi Lin, Yadong Lyu, Li-Chieh Yu, X. Gu
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引用次数: 5

摘要

利用通道裂纹破碎测试和衰减全反射傅里叶变换红外(ATR-FTIR)光谱技术研究了多层背板在室外和实验室加速老化后的力学和化学降解。以聚乙烯对苯二甲酸乙二醇酯/聚乙烯对苯二甲酸乙二醇酯/乙烯醋酸乙烯酯(PET/PET/EVA)为模型样品进行了研究。在美国马里兰州Gaithersburg进行了长达510天的室外老化,并在NIST(国家标准与技术研究所)SPHERE(通过高能辐射照射模拟光降解)上进行了补充加速实验室老化。采用基于通道裂纹破碎试验结果的解析模型,对断裂能、I型应力强度因子和膜强度进行了分析。讨论了机械降解和化学降解在室外老化和实验室加速老化中的相关性。本文的研究结果为了解多层光伏背板的风化破坏机理奠定了基础,为多层光伏背板室内室外加速试验的衔接奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Correlation between mechanical and chemical degradation after outdoor and accelerated laboratory aging for multilayer photovoltaic backsheets
Channel cracking fragmentation testing and attenuated total reflectance Fourier transform infrared (ATR-FTIR) spectroscopy were utilized to study mechanical and chemical degradation of a multilayered backsheet after outdoor and accelerated laboratory aging. A model sample of commercial PPE backsheet, namely polyethylene terephthalate/polyethylene terephthalate/ethylene vinyl acetate (PET/PET/EVA) was investigated. Outdoor aging was performed in Gaithersburg, Maryland, USA for up to 510 days, and complementary accelerated laboratory aging was conducted on the NIST (National Institute of Standards and Technology) SPHERE (Simulated Photodegradation via High Energy Radiant Exposure). Fracture energy, mode I stress intensity factor and film strength were analyzed using an analytical model based on channel cracking fragmentation testing results. The correlation between mechanical and chemical degradation was discussed for both outdoor and accelerated laboratory aging. The results of this work provide preliminary understanding on failure mechanism of backsheets after weathering, laying the groundwork for linking outdoor and indoor accelerated laboratory testing for multilayer photovoltaic backsheets.
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