Optical study of using ceramic foams for volumetric solar receivers

Mahmoud Alaa, M. Rady, M. Attia, E. Ewais
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引用次数: 5

Abstract

Ceramic foams are promising materials for volumetric solar receivers in concentrated solar power (CSP) plants. Understanding the solar heat flux distribution on the receiver is of great importance for optimizing the receiver volumetric efficiency and thermal performance. This work presents a 3D optical analysis of ceramic based volumetric solar receivers. The optical analysis is conducted using a Monte Carlo based solar ray tracing software. Ceramic foams are represented by idealized packed tetrakaidecahedron structures. The absorbed heat flux distribution and the effect of cell size, porosity and absorptivity on the penetration depth of the absorbed heat flux are investigated. Comparisons have been made with extruded honeycomb receivers. The results clearly demonstrate the dependence of flux distribution and penetration depth of solar rays on the material absorptivity and structure. The simulation results show a uniform heat flux distribution on the frontal faces with an intensity that increases with increasing the material absorptivity. Both the porosity and the cell size have a great effect on the penetration depth of the absorbed heat flux. In general, foam structure shows larger penetration depths than extruded honeycombs.
体积太阳能接收器用陶瓷泡沫的光学研究
陶瓷泡沫是聚光太阳能电站体积型太阳能接收器的重要材料。了解太阳热通量在集热器上的分布对优化集热器的容积效率和热性能具有重要意义。这项工作提出了基于陶瓷的体积太阳能接收器的三维光学分析。利用基于蒙特卡罗的太阳光线跟踪软件进行光学分析。陶瓷泡沫是一种理想的填充四面体结构。研究了吸热通量的分布,以及电池尺寸、孔隙率和吸收率对吸热通量穿透深度的影响。与挤压蜂窝接收器进行了比较。结果清楚地表明,太阳射线的通量分布和穿透深度与材料的吸收率和结构有关。模拟结果表明,热通量分布均匀,且强度随材料吸收率的增加而增大。孔隙率和电池尺寸对吸收热流的穿透深度有很大的影响。一般来说,泡沫结构的穿透深度比挤压蜂窝大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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