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Energy production advantage of independent subcell connection for multijunction photovoltaics

机译:多子光伏电池独立子电池连接的能源生产优势

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摘要

Increasing the number of subcells in a multijunction or “spectrum splitting” photovoltaic improves efficiency under the standard AM1.5D design spectrum, but it can lower efficiency under spectra that differ from the standard if the subcells are connected electrically in series. Using atmospheric data and the SMARTS multiple scattering and absorption model, we simulated sunny day spectra over 1 year for five locations in the United States and determined the annual energy production of spectrum splitting ensembles with 2–20 subcells connected electrically in series or independently. While electrically independent subcells have a small efficiency advantage over series-connected ensembles under the AM1.5D design spectrum, they have a pronounced energy production advantage under realistic spectra over 1 year. Simulated energy production increased with subcell number for the electrically independent ensembles, but it peaked at 8–10 subcells for those connected in series. Electrically independent ensembles with 20 subcells produce up to 27% more energy annually than the series-connected 20-subcell ensemble. This energy production advantage persists when clouds are accounted for.
机译:在标准AM1.5D设计频谱下,增加多结或“频谱拆分”光伏中的子电池数量可提高效率,但是如果子电池串联电连接,则在与标准不同的频谱下,效率会降低。利用大气数据和SMARTS多重散射和吸收模型,我们模拟了美国五个地点1年以上的晴天光谱,并确定了2-20个串联或独立电连接的子电池的光谱分裂集合的年能量产生。尽管在AM1.5D设计范围内,电独立子电池比串联连接的组件具有较小的效率优势,但在1年的真实频谱下,它们具有明显的能量产生优势。对于电气独立的集成体,模拟的能量产生随子电池数量的增加而增加,但对于串联连接的电池,其模拟能量峰值达到8-10个子电池。具有20个子电池的独立电气集成体,与串联连接的20个子电池集成体相比,每年可产生多达27%的能量。当考虑到云时,这种能源生产优势仍然存在。

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