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Cohesive and adhesive degradation in PET-based photovoltaic backsheets subjected to ultraviolet accelerated weathering

机译:在紫外线加速风化的PET基光伏底片中的粘性和粘合降解

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Delamination between layers in photovoltaic (PV) backsheets is often reported in the literature, causing voids that can collect moisture, diminish module backside heat dissipation, and reduce the backsheet's effectiveness as a physical barrier. While backsheets with weathering-resistant fluoropolymer outer layers have traditionally been used in modules, more recent backsheets using non-fluoropolymer outer layers, such as polyethylene terephthalate (PET), have been developed. These backsheets have shown signs of premature degradation, and their adhesion degradation, in particular, has not been widely studied. In the present work, the single cantilever beam (SCB) adhesion test was used to quantify the adhesion energy in two commercially available PET-based backsheets. To study the effect of minor changes in formulation, the backsheets were obtained from same manufacturer and product line but during different years. To study the effect of environmental variables on adhesion degradation, the backsheets were subjected to artificial weathering at controlled temperature, humidity, and ultraviolet (UV) radiation in an indoor weathering chamber, and the adhesion energy was quantified at several intervals of exposure time. Layering structure, composition, and adhesion failure mode were compared between the backsheets, using Raman and infrared spectroscopy and thermogravimetric analysis. The results show a large difference in initial (unexposed) adhesion energy between the backsheets, despite very similar structures and compositions. Following exposure, adhesion energy dropped significantly, primarily due to thermo-hydrolytic degradation of the polyurethane (PU)-based adhesive layers. Significant UV-induced adhesion degradation of the PET outer layer surface was also observed. The study represents an important step in understanding adhesion degradation in PET-based backsheets, suggesting ways in which adhesion integrity - and, correspondingly, module service life - can be improved.
机译:在文献中经常报告光伏(PV)底片之间的层分层,导致可能收集水分,减少模块背面散热的空隙,并降低底片作为物理屏障的效果。虽然具有风化含氟聚合物外层的底片传统上用于模块中,但已经开发出使用非含氟聚合物外层的最近底片,例如聚对苯二甲酸乙二醇酯(PET)。这些底片表现出过早降解的迹象,特别是它们的粘附降解尚未被广泛研究。在本作工作中,单个悬臂梁(SCB)粘附试验用于量化两种市售PET基底片中的粘附能量。为了研究制剂的微小变化的影响,底片是从相同的制造商和产品系列中获得的,而是在不同年份中获得。为了研究环境变量对粘合性降解的影响,在室内耐候室中的受控温度,湿度和紫外(UV)辐射下对底片进行人工化风化,并且在几种暴露时间间隔定量粘合能量。在底片之间比较了层状结构,组合物和粘附失效模式,使用拉曼和红外光谱和热重分析。尽管结构和组合物非常相似,但结果表明底片之间的初始(未曝光)粘附能量差异很大。接触后,粘合能量显着降低,主要是由于聚氨酯(PU)基粘合剂层的热水解劣化。还观察到显着的紫外线诱导的PET外层表面的粘附劣化。该研究代表了了解宠物基底片中粘附性降解的重要一步,表明粘附完整性 - 以及相应地,模块使用寿命的方式。

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