NUMERICAL ANALYSIS ON HOT WATER STORAGE TANK INTEGRATED WITH PHASE CHANGE MATERIALS

Elisangela Jesus D'Oliveira, Sol Carolina Costa Pereira, U. Azimov
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引用次数: 1

Abstract

The combination of solar collectors with latent heat thermal energy storage system (LHTESS) has been employed to utilise solar energy more effectively, as this technology can provide a balancing function to match the variability in supply and demand, reducing the supply challenges for electricity. Computational fluid dynamic (CFD) has been proven to be an important mathematical tool for optimisation purposes; thus, it can be used to validate different design configurations. This study aims to conduct a numerical simulation using ANSYS/Fluent to investigate the thermal behaviour of a phase change material (PCM) storage system integrated with a thermal solar collector and compare it with experimental data from the literature review, with the objective of investigating the appropriate selection of the storage media material. The good correspondence between the numerical simulation results and the experimental results validates the numerical model proposed to be used with confidence to evaluate the performance of the solar collector in different configurations. The configurations evaluated include different types of phase change materials and NEPCM (paraffin wax, RT64HC, beeswax, RT64HC with 1 wt.% of Cu, beeswax with 0.15 wt.% of GNPs). A time step sensitivity analysis was conducted and the results obtained showed that the numerical model is not time dependent. From the results obtained beeswax with 0.15 wt.% had the highest peak of the average temperature of the water, however the integration of PCMs does not offer major benefits in terms of heat gains to compensate the highest cost related to these materials.
相变材料集成热储水箱的数值分析
太阳能集热器与潜热储热系统(LHTESS)的结合可以更有效地利用太阳能,因为这项技术可以提供平衡功能,以匹配供需的变化,减少电力供应的挑战。计算流体动力学(CFD)已被证明是用于优化目的的重要数学工具;因此,它可以用来验证不同的设计配置。本研究旨在利用ANSYS/Fluent进行数值模拟,研究集成太阳能集热器的相变材料(PCM)存储系统的热行为,并将其与文献综述的实验数据进行比较,目的是研究存储介质材料的适当选择。数值模拟结果与实验结果吻合较好,验证了所建立的数值模型对不同配置下集热器性能的评价是可信的。评估的构型包括不同类型的相变材料和NEPCM(石蜡、RT64HC、蜂蜡、含1 wt.% Cu的RT64HC、含0.15 wt.% GNPs的蜂蜡)。进行了时间步长灵敏度分析,结果表明数值模型与时间无关。从所获得的结果来看,0.15 wt.%的蜂蜡具有最高的水平均温度峰值,然而,在热量增益方面,pcm的集成并没有提供主要的好处,以补偿与这些材料相关的最高成本。
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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