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A Rigorous Analysis of Series-Connected, Multi-Bandgap, Tandem Thermophotovoltaic (TPV) Energy Converters

机译:严格分析系列连接,多带隙,串联炎热球(TPV)能量转换器

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Multi-bandgap, photonic energy conversion is under investigation for nearly every class of photovoltaic materials, with monolithic, series-connected device structures being the preferred mode of implementation. For TPV energy conversion systems, such an approach represents the next wave in TPV converter advancement. In this paper, we focus on a rigorous analysis of series-connected, multi-bandgap, tandem (SCMBT) converter structures according to Kirchhoff's circuit laws. A general formulation is presented, followed by an application of the general formulation to a typical, semi-realistic model for well-behaved, p-n junction, photovoltaic devices. Using results generated from a computer code written in Visual Basic, we then present example calculations for SCMBT TPV converters with two subcells, for a TPV system utilizing a blackbody radiator operating at 954 °C (1750°F). A comparison of the results obtained using the rigorous analysis, with those obtained by using the commonly adopted subcell-photocurrent-matching design rule, is discussed in detail. An output power density increase of ~5% is realized in the solution determined by the rigorous analysis, as compared to that obtained with the subcell-photocurrent-matching rule. Additional interesting, non-intuitive results are also highlighted.
机译:多带隙,光子能量转换是几乎每一类光伏材料的调查,用整体串联连接的装置结构是优选的实现方式。对于TPV能量转换系统,这种方法表示TPV转换器进步中的下一个波。在本文中,我们专注于根据Kirchhoff的电路规律对串联连接,多带隙,串联(SCMBT)转换器结构的严格分析。提出了一般的制剂,然后将一般配方应用于典型的半熟模型,用于良好表现,P-N结,光伏器件。使用从在Visual Basic中编写的计算机代码生成的结果,我们为使用在954°C(1750°F)的黑体散热器的TPV系统提供两个子单元的SCMBT TPV转换器的示例计算。详细讨论了使用严格分析获得的结果的比较,其中通过使用常用的子细胞 - 光电流匹配设计规则得到的那些。与用子单元光电流匹配规则所获得的相比,通过严格分析确定的溶液中实现了〜5%的输出功率密度增加。还突出了额外的有趣,非直观的结果。

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