FluxTracer: A 3D-Partitioning and Radiant Flux Computer Tool to Analyse the Optical Behaviour of Light Collection and Concentration Subsystems Using High Performance Computers

Manuel Blanco, E. Votyakov, C. Christou, C. Papanicolas, Clotilde Corsi, John Pye
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Abstract

The light collection and concentration subsystem (LCCS) of any concentrating solar thermal (CST) system is composed of the surfaces that collect and concentrate the sunlight and of the input surfaces of the receivers, or receivers’ envelopes, where the light is concentrated. For all commercial CST technologies the LCCS is, together with the power block, the subsystem that has more influence in the overall performance and cost. Thus, its optimization is critical to increase the cost-competitiveness of these systems. This optimization requires, in many cases, the optimization of the position, geometry and size of a very large number of solar collecting and concentrating surfaces as well as the optimization of the shape and size of the input surfaces of the receivers where the sunlight is concentrated. Because a full optimization requires the exploration of a configuration space with a very large number of dimensions, the traditional approach consist in making many initial assumptions to drastically reduce the number of dimensions of the configuration space to a handful, so that the optimization can be carried out using conventional high-end workstations in a matter of hours. However, to achieve relevant breakthroughs and to substantially increase the cost-competitiveness of CST systems a bolder approach is needed, where sophisticated design and analysis tools, engineered from the start to be used in High Performance Computers (HPC), will be combined with sophisticated optimization strategies targeted to explore and find optimal solutions in very high dimensional configuration spaces. This paper presents the first of a series of such design and analysis tools. The tool, call Flux Tracer, partitions the three-dimensional space in which the LCC subsystem under analysis is immersed into volumetric pixels (voxels) and computes the radiant energy flux that traverses each voxel as a function of time. It integrates the energy density in every voxel overtime, providing detailed information regarding how the radiant energy flows in space in a given LCC subsystem and in a given period of time. This information is the cornerstone of the highly sophisticated computational LCC subsystem optimization framework The Cyprus Institute (CYI) is developing, in collaboration with the Australian National University (ANU), targeted to be used in HPC’s.
FluxTracer:一种3d划分和辐射通量计算机工具,用于分析使用高性能计算机的光收集和集中子系统的光学行为
任何聚光太阳能热(CST)系统的光收集和集中子系统(LCCS)由收集和集中太阳光的表面以及光集中的接收器或接收器外壳的输入表面组成。在所有商用CST技术中,LCCS与电源模块一起,是对整体性能和成本影响更大的子系统。因此,其优化对于提高这些系统的成本竞争力至关重要。在许多情况下,这种优化需要优化非常多的太阳能收集和集中表面的位置、几何形状和尺寸,以及优化太阳光集中的接收器输入表面的形状和尺寸。由于全面的优化需要对具有非常多维度的配置空间进行探索,传统的方法包括做出许多初始假设,以将配置空间的维度数量大幅减少到少数几个,从而可以在几个小时内使用传统的高端工作站执行优化。然而,为了实现相关突破并大幅提高CST系统的成本竞争力,需要更大胆的方法,从一开始就设计用于高性能计算机(HPC)的复杂设计和分析工具,将与复杂的优化策略相结合,旨在探索和找到高维配置空间的最佳解决方案。本文介绍了一系列此类设计和分析工具中的第一个。该工具名为Flux Tracer,它将被分析的LCC子系统所处的三维空间划分为体素(体素),并计算遍历每个体素的辐射能量通量作为时间的函数。它集成了每个体素的能量密度,提供了在给定LCC子系统和给定时间段内辐射能量如何在空间中流动的详细信息。这些信息是塞浦路斯研究所(CYI)与澳大利亚国立大学(ANU)合作开发的高度复杂的计算LCC子系统优化框架的基础,目标是在HPC中使用。
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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