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Towards Validation of Advanced Accelerated Stress Testing Protocols through Failure Analysis and Materials Characterization

机译:通过故障分析和材料表征验证先进的加速应力测试协议

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As the lifetime of photovoltaic modules increases toward the goal of 50 years, accelerated stress testing is critical to assessing the viability of newer, improved, and often cheaper materials in the field. However, the validation of accelerated testing to reproduce field failure has remained elusive. The recent developments of more advanced stress testing protocols utilizing sequential and combined stressors have provided another opportunity for validation. Using a suite of mechanical, chemical, and structural characterization methods we report the development of our approach using a known bad backsheet “AAA.” We then apply this approach to PVDF-based backsheets to further confirm the generalizability of this approach. The outcome of this work is two-fold: (1) validation of advanced accelerated testing protocols which will enable the prediction of field failures in new materials, and (2) deeper insights into the degradation mechanisms observed through the extensive characterization allowing for improved materials engineering and development.
机译:由于光伏模块的寿命增加到50年的目标,因此加速的应力测试对于评估较新的,改进,并且通常在现场更便宜的材料的可行性至关重要。然而,加速测试的验证重现现场失败仍然难以捉摸。利用顺序和组合压力源的更高级压力测试协议的最新发展已经为验证提供了另一个机会。使用一套机械,化学和结构表征方法,我们通过已知的不良底片“AAA”报告我们的方法的开发。然后,我们将这种方法应用于PVDF的底片,以进一步证实这种方法的普遍性。这项工作的结果是两倍:(1)对先进加速测试协议的验证,将使新材料中的现场故障预测,(2)深入了解通过广泛表征观察到的降解机制,允许改进的材料观察到的劣化机制工程与发展。

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