理解光伏组件退化的数据科学方法

Nicholas R. Wheeler, A. Gok, T. Peshek, L. Bruckman, Nikhil Goel, Davis Zabiyaka, Cara Fagerholm, Thomas Dang, Christopher Alcantara, M. Terry, R. French
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引用次数: 4

摘要

光伏(PV)组件的预期寿命性能和退化是光伏作为一种有竞争力的能源所面临的一个主要问题。量化性能退化的速率和机制的研究不仅是为了这些有前途的技术的可融资性和采用,而且也是为了诊断和改进其机械退化途径。为了实现这一目标,已经开发了一种利用数据科学原理进行降解科学研究的通用方法,并将其应用于c-Si光伏组件。通过结合领域知识和数据得出的见解,指出了将环境压力因素与光伏组件性能特征的退化联系起来的机械退化途径。在这些结果的指导下,有针对性的研究已经产生了描述降解速率的预测方程,进一步的研究正在进行中,以实现其他感兴趣的机制途径。
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A data science approach to understanding photovoltaic module degradation
The expected lifetime performance and degradation of photovoltaic (PV) modules is a major issue facing the levelized cost of electricity of PV as a competitive energy source. Studies that quantify the rates and mechanisms of performance degradation are needed not only for bankability and adoption of these promising technologies, but also for the diagnosis and improvement of their mechanistic degradation pathways. Towards this goal, a generalizable approach to degradation science studies utilizing data science principles has been developed and applied to c-Si PV modules. By combining domain knowledge and data derived insights, mechanistic degradation pathways are indicated that link environmental stressors to the degradation of PV module performance characteristics. Targeted studies guided by these results have yielded predictive equations describing rates of degradation, and further studies are underway to achieve this for additional mechanistic pathways of interest.
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