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

机译:用于太阳能光化学反应器的聚光聚光器的设计及其方法的上限

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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集中具有独特的功能,可以提高光化学反应器的效率。该方法对于太阳能反应器的合适实现是密封在板状反射腔中的一系列平行管状接收器,由于采用了自适应光学过滤机制,光被捕获在其中。为了预测这种通用配置中的浓度,我们之前已经基于理想假设建立了一个分析模型,该模型在我们的实际配置中无效。在这里,我们使用分析计算和数值射线追踪模拟来研究后者的有限尺寸如何影响我们的模型预测,并推断出设计准则以最小化理想化。我们应用这些指南来设计一种光学集中器,以最大化管状接收器上的通量密度,并讨论该方法的上限以及其独特功能的优势。考虑到实际和技术上的限制,在我们的常规配置中,此方法可以提供大约十个太阳的光学聚光度。

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