PV backsheets survey protocol: A framework for geo-spatial field surveys for bulk material characterization and reliability analysis applied across 41 PV systems

IF 6 2区 工程技术 Q2 ENERGY & FUELS
Raymond J. Wieser , Zelin Li , Xuanji Yu , Stephanie L. Moffitt , Ruben Zabalza , Michael D. Kempe , Liang Ji , Colleen O’Brien , Xiaohong Gu , Kenneth P. Boyce , Laura S. Bruckman
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引用次数: 0

Abstract

As widespread adoption of photovoltaic (PV) technologies continues, understanding the lifetime of modules is paramount to the viability of the industry as an environmentally conscious alternative to traditional energy generation. Although power degradation can affect the total energy production of a module over its lifetime, module safety failures necessitate the removal of a module leading to a loss of not only the particular asset, but the earning potential of the device. Therefore, it is critical to ensure that the components that provide essential safety functions for PV module operate for their entire rated lifetime. PV backsheets provide necessary electrical insulation to the completed device and failure of this component is cause for a immediate removal of the module. Degradation of the PV module backsheet has led to module safety failures in large-scale installations, costing millions of dollars in damages and lost potential revenue. The spatio-temporal degradation of fielded PV modules is important to study in order to identify which modules within installations are experiencing the greatest exposure conditions and in turn have the highest chance of failure. This paper describes a comprehensive field survey protocol developed for monitoring PV module backsheet performance using solely non-destructive methods in commercial PV fields. The protocol establishes a field naming convention, sampling method, data handling requirements, and measurement procedures. By ensuring consistent data collection practices, the field survey protocol enables research groups to obtain data of uniform quality on backsheet performance over multiple years and locations. In this study, the developed protocol was implemented at forty-one PV sites. Eight different types of airside layer backsheet materials including poly(vinylidene fluoride) (PVDF), acrylic PVDF, poly(tetrafluoroethylene-co-hexafluoropropylene-co-vinylidene fluoride) (THV), poly(vinyl fluoride) (PVF), poly(ethylene terephthalate) (PET), fluoroethylene vinyl ether (FEVE), polyethylene naphthalate (PEN), and glass were identified using attenuated total reflection Fourier transform infrared (ATR-FTIR) spectroscopy. The field survey results show that the spatial distribution of degradation indicators are non-uniform within a particular module, individual site, and across site locations. The degradation of PV modules increased in severity for modules mounted at the edge of rows (across a field) and near the junction box (within a module). This study demonstrates the sensitivity of material performance to exposure length across different materials and climates.
光伏背板调查协议:用于41个光伏系统的散装材料特性和可靠性分析的地理空间现场调查框架
随着光伏(PV)技术的广泛采用,了解组件的寿命对于该行业作为传统能源发电的环保替代品的可行性至关重要。虽然电源退化会影响模块在其使用寿命期间的总发电量,但模块安全故障需要拆卸模块,这不仅会导致特定资产的损失,还会导致设备的盈利潜力损失。因此,确保为光伏组件提供基本安全功能的组件在其整个额定使用寿命内运行至关重要。光伏背板为完整的设备提供必要的电绝缘,该组件的故障是立即拆卸模块的原因。光伏组件背板的退化导致大规模安装中的组件安全故障,造成数百万美元的损失和潜在收入损失。研究现场光伏组件的时空退化是很重要的,以便确定安装中的哪些模块经历了最大的暴露条件,进而有最高的故障机会。本文描述了一种全面的现场调查协议,用于在商业光伏领域使用完全无损的方法监测光伏模块背板性能。该协议建立了现场命名约定、采样方法、数据处理要求和测量程序。通过确保一致的数据收集实践,实地调查协议使研究小组能够获得多年和地点的背板性能的统一质量数据。在本研究中,开发的协议在41个光伏站点实施。利用衰减全反射傅里叶变换红外(ATR-FTIR)光谱技术,对八种不同类型的空侧层背板材料进行了鉴定,包括聚偏氟乙烯(PVDF)、丙烯酸PVDF、聚四氟乙烯-共六氟丙烯-共偏氟乙烯)(THV)、聚氟乙烯(PVF)、聚对苯二甲酸乙酯(PET)、氟乙烯乙烯醚(FEVE)、聚萘二甲酸乙二醇酯(PEN)和玻璃。野外调查结果表明,退化指标在特定模块内、单个站点内和站点间的空间分布不均匀。安装在行边缘(穿过一块田地)和靠近接线盒(在一个组件内)的组件,光伏组件的退化程度增加。本研究证明了材料性能对不同材料和气候下暴露时间的敏感性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Solar Energy
Solar Energy 工程技术-能源与燃料
CiteScore
13.90
自引率
9.00%
发文量
0
审稿时长
47 days
期刊介绍: Solar Energy welcomes manuscripts presenting information not previously published in journals on any aspect of solar energy research, development, application, measurement or policy. The term "solar energy" in this context includes the indirect uses such as wind energy and biomass
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