外加热混合太阳能池系统设计参数的逆优化

Abhishek Kumar, R. Das
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摘要

从各种类型的太阳能集热器向太阳能池提供外部热量是一种可行的替代方案,可以显著提高其性能。本文采用逆方法对真空管太阳能集热器(ETSC)外热混合太阳能池的各种设计参数进行了评估。基于热平衡方程求解了太阳池各区域的正演模型,以预测给定气候条件下太阳池储存区达到的温度。布莱恩特和科尔贝克的关系被用来解释太阳辐射从太阳池的上层传播到底层时的减少。用龙格-库塔四阶格式求解了相关的微分方程。在蓄热区方程的正演模型中加入了ETSC的加热分量。从ETSC添加的热量被认为与孔面积与池底面积的比例、ETSC的热效率和ETSC上的总太阳辐射入射成正比。太阳能池的正演模型和太阳能池与ETSC的组合模型都通过先前在美国埃尔帕索和澳大利亚墨尔本的实验和数值研究进行了验证。提出了一种基于遗传算法的ETSC和太阳能池几何参数的反演模型,以获得太阳能池-ETSC联合系统所需的性能。
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Inverse Optimization of Design Parameters in a Hybrid Solar Pond System With External Heat Addition
External heat supply to solar ponds from various types of solar collectors is a feasible alternative that significantly enhances its performance. In this work, various design parameters in a hybrid solar pond with external heat addition from Evacuated Tube Solar Collector (ETSC) are evaluated using an inverse approach. A forward model based on heat balance equations is solved for various zones of the solar pond to predict temperatures attained by its storage zone under a given climatic condition. Bryant and Colbeck’s relation is used to account for the diminution of the solar radiation as it travels from upper layers of the solar pond to its bottom layers. The relevant differential equations are solved using a Runge-Kutta fourth order scheme. The component of heat addition from ETSC is added to the forward model in the storage zone’s equation. Heat added from ETSC is considered proportional to the fraction of the aperture area to the pond’s base area, the thermal efficiency of ETSC and global solar radiation incident on ETSC. Both the forward model of the solar pond and combined solar pond and ETSC model were validated with previous experimental and numerical studies available in the literature for El Paso, USA, and Melbourne, Australia. An inverse model based on genetic algorithm is proposed for evaluating the set of geometrical parameters of ETSC and solar pond in order to derive a required performance from the combined solar pond-ETSC system.
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