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A computational approach to simulate the optical and thermal performance of a novel complex geometry solar tower molten salt cavity receiver

机译:模拟新型复杂几何太阳能塔熔盐腔接收器的光学和热性能的计算方法

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摘要

A novel complex geometry solar tower molten salt cavity receiver is presented and investigated with regard to its optical and thermal performance. The receiver's design consists of a collector with the goal of limiting the concentrated rays from escaping, which is further enhanced by an absorber design that consists of an array of hexagonal pyramid elements inspired by Garbrecht et al. (2013) that limits re-radiative and convective losses. The performance analysis considers the solar position, DNI and sun shape with an existing heliostat field (PS-10 field) to analyse the receiver, rather than assuming a flux. The optical analysis is conducted with the Monte Carlo ray-tracing approach, while the thermal analysis is conducted using computational fluid dynamics (CFD). The initial design showed impractical receiver efficiencies of 32.8%, while preliminary sensitivity studies on selected parameters increased efficiencies up to 69.9%. In the process a design with improved optics was developed and proposed, with initial results increasing efficiencies up to 82.4%. The study indicates that the design is promising from a heat transfer point of view, although many improvements are still to be made to the design to make it competitive.
机译:提出并研究了一种新型复杂几何太阳能塔熔融盐腔接收器,并考虑了其光学和热性能。接收器的设计包括收集器,该集电器具有限制浓缩光线的逃逸,这通过吸收器设计进一步增强,该设计包括由Garbrecht等人的六角金字塔元素组成的阵列。 (2013)限制重新辐射和对流损失。性能分析考虑了使用现有的Heliostat领域(PS-10字段)的太阳能位置,DNI和太阳形状来分析接收器,而不是假设助焊剂。使用蒙特卡罗射线跟踪方法进行光学分析,而使用计算流体动力学(CFD)进行热分析。初始设计表现出不切实际的接收效率为32.8%,而选定参数的初步敏感性研究增加了高达69.9%的效率。在该过程中,开发并提出了一种改进光学器件的设计,初始导致效率增加高达82.4%。该研究表明,设计仍然具有传热观点,尽管仍有许多改进来设计,以使其具有竞争力。

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