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Two-junction holographic spectrum-splitting microconcentrating photovoltaic system

机译:两结全息分光微聚光光伏系统

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摘要

Spectrum-splitting is a multijunction photovoltaic technology that can effectively improve the conversion efficiency and reduce the cost of photovoltaic systems. Microscale PV design integrates a group of microconcentrating photovoltaic (CPV) systems into an array. It retains the benefits of CPV and obtains other benefits such as a compact form, improved heat rejection capacity, and more versatile PV cell interconnect configurations. We describe the design and performance of a two-junction holographic spectrum-splitting micro-CPV system that uses GaAs wide bandgap and silicon narrow bandgap PV cells. The performance of the system is simulated with a nonsequential raytracing model and compared to the performance of the highest efficiency PV cell used in the micro-CPVarray. The results show that the proposed system reaches the conversion efficiency of 31.98% with a quantum concentration ratio of 14.41x on the GaAs cell and 0.75x on the silicon cell when illuminated with the direct AM1.5 spectrum. This system obtains an improvement over the best bandgap PV cell of 20.05%, and has an acceptance angle of +/- 6 deg allowing for tolerant tracking. (C) 2017 Society of Photo-Optical Instrumentation Engineers (SPIE)
机译:频谱分离是一种多结光伏技术,可以有效提高转换效率并降低光伏系统的成本。微型光伏设计将一组微型聚光光伏(CPV)系统集成到一个阵列中。它保留了CPV的优点,并获得了其他好处,例如紧凑的形式,改进的散热能力以及更通用的PV电池互连配置。我们描述了使用GaAs宽带隙和硅窄带隙PV电池的两结全息光谱分裂微CPV系统的设计和性能。使用非顺序光线跟踪模型模拟系统的性能,并将其与微型CPV阵列中使用的最高效率PV电池的性能进行比较。结果表明,当用直接AM1.5光谱照射时,所提出的系统在GaAs电池上的量子浓度比为14.41x,在硅电池上的量子浓度比为0.75x时,转换效率达到31.98%。与最佳带隙光伏电池相比,该系统获得了20.05%的改进,并且接受角度为+/- 6度,可以实现容错跟踪。 (C)2017光电仪器工程师协会(SPIE)

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