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首页> 外文期刊>Solar Energy >Degradation mechanisms and partial shading of glass-backsheet and double-glass photovoltaic modules in three climate zones determined by remote monitoring of time-series current-voltage and power datastreams
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Degradation mechanisms and partial shading of glass-backsheet and double-glass photovoltaic modules in three climate zones determined by remote monitoring of time-series current-voltage and power datastreams

机译:通过远程监控时间序列电流电压和电源数据流确定的三种气候区中玻璃底片和双玻璃光伏模块的劣化机制和双玻璃光伏模块

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摘要

Degradation and partial shading impact the long-term reliability and power production of photovoltaic (PV) modules and power plants. Time-series power (P-mp) and current-voltage (I -V) curve datastreams from PV modules enable a remote diagnostic approach to quantify active degradation mechanisms and identify partial shading. We study three to nine years of these datastreams, including 3.6 million I -V curves and 36 million P-mp values, from eight PV modules, four each of double-glass and glass-backsheet module architectures, located in three distinctly different Koppen-Geiger climate zones, to determine the module's performance loss rates (PLR), identify active degradation mechanisms and power loss modes, along with partial shading by local objects. Considering both module architectures, PLR results indicate that the BSh climate zone is the most aggressive for module degradation, while the Alpine ET zone is the mildest climate. PLR of double-glass modules located in BWh and BSh climate zones are different due to the significantly greater uniform current loss (Delta P-Isc) for double glass modules in BSh, at a 5% significance level. Power loss for four out of five modules located in the BWh and BSh climates are dominated by uniform current degradation. Statistical analysis of multistep I -V curves detects partial shading experienced by three studied modules with details of the shading profile, the shading Poynting vector diagram for the obstacle's relative position, shading scenarios, and duration. This work demonstrates how remote monitoring and diagnosis of P-mp & I -V time-series of modules can provide quantitative operations and maintenance insights into system performance, degradation mechanisms, and shading.
机译:劣化和部分遮蔽会影响光伏(PV)模块和发电厂的长期可靠性和电力生产。 PV模块的时间序列功率(P-MP)和电流 - 电压(I -V)曲线数据集能够进行远程诊断方法来量化主动劣化机制并识别部分着色。我们研究了三到九年这些数据流,包括360万I -V曲线和3600万P-MP值,来自8个光伏模块,四个双玻璃和玻璃底片模块架构,位于三个明显不同的Koppen- Geiger气候区域,确定模块的性能损失率(PLR),识别主动劣化机制和功率损耗模式,以及本地对象的部分阴影。考虑到模块架构,PLR结果表明,BSH气候区是模块劣化最具侵略性的,而Alpine ET区是最温和的气候。位于BWH和BSH气候区的双玻璃模块的PLR由于BSH中双玻璃模块的均匀电流损失(Delta P-ISC)具有明显更大的均匀电流损失(Delta P-ISC)。位于BWH和BSH气候中的五个模块中的四个功能的功率损耗主要是均匀的电流降解主导。 MultiSep I -V曲线的统计分析检测三个研究的模块经历的部分阴影,其中包含遮蔽型材的细节,障碍物的相对位置,阴影场景和持续时间的阴影Poynte向量图。这项工作展示了P-MP和I -V时间系列模块的远程监控和诊断如何为系统性能,劣化机制和阴影提供定量操作和维护洞察。

著录项

  • 来源
    《Solar Energy》 |2021年第8期|1291-1301|共11页
  • 作者单位

    Case Western Reserve Univ SDLE Res Ctr Cleveland OH 44106 USA|Case Western Reserve Univ Mat Sci Dept Cleveland OH 44106 USA;

    Case Western Reserve Univ SDLE Res Ctr Cleveland OH 44106 USA|Case Western Reserve Univ Macromol Sci Dept Cleveland OH 44106 USA;

    Case Western Reserve Univ SDLE Res Ctr Cleveland OH 44106 USA|Case Western Reserve Univ Mat Sci Dept Cleveland OH 44106 USA;

    Fraunhofer Inst Solar Energy Syst ISE Heidenhofstr 2 D-79110 Freiburg Germany;

    Fraunhofer Inst Solar Energy Syst ISE Heidenhofstr 2 D-79110 Freiburg Germany;

    Case Western Reserve Univ SDLE Res Ctr Cleveland OH 44106 USA|Case Western Reserve Univ Mat Sci Dept Cleveland OH 44106 USA|Sandia Natl Labs Albuquerque NM 87123 USA;

    Case Western Reserve Univ SDLE Res Ctr Cleveland OH 44106 USA|Case Western Reserve Univ Mat Sci Dept Cleveland OH 44106 USA|Case Western Reserve Univ Macromol Sci Dept Cleveland OH 44106 USA|Case Western Reserve Univ Comp & Data Sci Dept Cleveland OH 44106 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Degradation; Partial shading; P-mp amp; I-V time-series; Outdoor I-sc-V-oc; Remote monitoring;

    机译:降解;部分着色;P-MP&I-V时间系列;户外I-SC-V-OC;远程监控;

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