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Design of a light confining concentrator for a solar photochemical reactor and upper bound to the method

机译:用于太阳能光化反应器和上限于该方法的光限制浓缩器的设计

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Optical concentration obtained by light confinement bears unique features that can increase the efficiency of a photochemical reactor. A suitable implementation of this method for a solar reactor is a series of parallel tubular receivers sealed in a slab-shape reflective cavity, in which light is trapped thanks to a self-adaptive optical filtering mechanism. To predict the concentration in such a generic configuration, we had previously established an analytical model based on idealistic assumptions, which are not valid in our real configuration. Here, we use analytical calculations and numerical ray-trace simulations to investigate how the finite size of the latter impacts the prediction of our model and extrapolate design guidelines for minimal departure from ideality. We apply these guidelines to design an optical concentrator maximizing flux density on tubular receivers and discuss the upper bound to the method, as well as the benefits from its unique features. Accounting for practical and technological limitations, this method can provide optical concentration in the order of ten suns in our generic configuration.
机译:通过光限制获得的光学浓度具有可提高光化学反应器的效率的独特特征。这种用于太阳能电抗器的这种方法的合适实施是一系列并联管状接收器,密封在平板形反射腔中,因为通过自适应光学过滤机构,光被捕获。为了预测这种通用配置的浓度,我们先前已经建立了基于理想主义假设的分析模型,这在我们的真实配置中无效。在这里,我们使用分析计算和数值射线仿真来研究后者的有限尺寸如何影响我们模型的预测和外推设计指南,以实现极其偏离理想性。我们应用这些指导方针来设计光学聚光器,最大化管状接收器上的磁通密度,并讨论该方法的上限,以及来自其独特功能的好处。对实际和技术限制的核算,这种方法可以在我们的通用配置中提供十个太阳的光学浓度。

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