成长窗格:调查现代玻璃-玻璃组件频繁早期故障背后的光伏技术趋势

IF 2.5 3区 工程技术 Q3 ENERGY & FUELS
Elizabeth C. Palmiotti;Martin Springer;Jarett Zuboy;Timothy J. Silverman;Jennifer L. Braid;Dirk C. Jordan;Salil Rabade;Teresa M. Barnes
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引用次数: 0

摘要

光伏(PV)组件材料和技术不断发展,因为组件制造商和买家试图将成本降至最低,性能最大化,并加快部署。硅模块和薄膜模块都在向类似的玻璃-玻璃设计方向发展,采用更薄的玻璃片,以增加功率输出,同时减轻模块重量,而且这两种类型都越来越多地安装在单轴跟踪器上。与此同时,越来越多的光伏电站报告说,在使用这些“大型软盘模块”的早期系统中,玻璃会自发破裂。在本文中,我们确定可能导致早期故障增加的并发模块更改,解释其趋势,并讨论其可靠性含义。我们认为,更大、更薄的玻璃片以及热处理和质量的变化可能会导致玻璃的脆弱性。我们注意到,趋向于较弱或后置框架的趋势也可能导致模块故障,特别是对于安装在跟踪器上的“超大”模块。这些趋势的结合可能会将模块推向一个阈值,在这个阈值上,越来越多的早期故障会导致“浴盆曲线”的前沿重新出现。目前的资格测试对于发现新模块设计中的这些早期故障似乎是无效的,模块购买者没有足够的可靠性信息,或者不能在模块采购期间优先考虑这些信息。需要进一步的研究来确定导致玻璃破碎的现场条件,以及在新的模块设计中是否存在一个或多个限制缺陷导致玻璃破碎。早期的失败可以通过回归更健壮的设计或确保更好的模块测试和质量保证来减轻。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Growing Panes: Investigating the PV Technology Trends Behind Frequent Early Failures in Modern Glass–Glass Modules
Photovoltaic (PV) module materials and technologies continue to evolve as module manufacturers and buyers try to minimize costs, maximize performance, and speed deployment. Both silicon and thin film modules are converging toward similar ∼3 $\text{m}^{2}$ glass–glass designs with thinner glass sheets to increase power output while reducing module weight, and both types are increasingly mounted on single-axis trackers. At the same time, an increasing number of PV sites have been reporting spontaneous glass breakage in early life systems deployed with these “big, floppy modules.” In this article, we identify the concurrent module changes that may be contributing to increased early failure, explain the trends, and discuss their reliability implications. We suggest that larger, thinner glass sheets along with variations in heat treatment and quality may be contributing to glass vulnerability. We note that trends toward weaker or back-mounted frames may also be contributing to module failures, especially for “extra-extra-large” modules mounted on trackers. Combinations of these trends may have pushed modules to a threshold at which increasing early failures are causing the front edge of the “bathtub curve” to re-emerge. Current qualification testing appears to be ineffective for catching these early failures in new module designs, and module buyers do not have enough reliability information—or cannot prioritize such information—during module procurement. Additional research is needed to identify the field conditions leading to glass breakage and if there is one or multiple limiting flaws in new module designs causing glass breakage. Early failures may be mitigated by returning to more robust designs or ensuring better module testing and quality assurance.
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来源期刊
IEEE Journal of Photovoltaics
IEEE Journal of Photovoltaics ENERGY & FUELS-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
7.00
自引率
10.00%
发文量
206
期刊介绍: The IEEE Journal of Photovoltaics is a peer-reviewed, archival publication reporting original and significant research results that advance the field of photovoltaics (PV). The PV field is diverse in its science base ranging from semiconductor and PV device physics to optics and the materials sciences. The journal publishes articles that connect this science base to PV science and technology. The intent is to publish original research results that are of primary interest to the photovoltaic specialist. The scope of the IEEE J. Photovoltaics incorporates: fundamentals and new concepts of PV conversion, including those based on nanostructured materials, low-dimensional physics, multiple charge generation, up/down converters, thermophotovoltaics, hot-carrier effects, plasmonics, metamorphic materials, luminescent concentrators, and rectennas; Si-based PV, including new cell designs, crystalline and non-crystalline Si, passivation, characterization and Si crystal growth; polycrystalline, amorphous and crystalline thin-film solar cell materials, including PV structures and solar cells based on II-VI, chalcopyrite, Si and other thin film absorbers; III-V PV materials, heterostructures, multijunction devices and concentrator PV; optics for light trapping, reflection control and concentration; organic PV including polymer, hybrid and dye sensitized solar cells; space PV including cell materials and PV devices, defects and reliability, environmental effects and protective materials; PV modeling and characterization methods; and other aspects of PV, including modules, power conditioning, inverters, balance-of-systems components, monitoring, analyses and simulations, and supporting PV module standards and measurements. Tutorial and review papers on these subjects are also published and occasionally special issues are published to treat particular areas in more depth and breadth.
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