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A CFD modeling and investigation of a packed bed of high temperature phase change materials (PCMs) with different layer configurations

机译:具有不同层配置的高温相变材料(PCM)填充床的CFD建模和研究

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摘要

In recent years, one of the most important issues is optimization of thermal energy-storing technologies. Using phase change materials (PCMs) with specific phase change temperatures allows us to store latent heat as thermal energy. This is one of the most efficient ways to store thermal energy. The objective of this paper is to investigate the discharge performance of a packed bed filled with multi layers of high temperature encapsulated PCMs through a CFD modeling via Comsol multi-physics software. Results of simulation are compared to results of the experimental researches of the literature and there is good agreement between them. The influence of each layer's height and porosity along with different configurations of the PCMs according to their phase change temperatures (ascending and descending in flow direction) are analyzed. It is observed that increasing the inlet velocity of heat transfer fluid (HTF) and increasing the porosity of layers of PCM in the packed bed have similar outcomes and makes the packed bed deplete more rapidly. Some new configurations are suggested and optimized regarding Delta (tutl), which is defined as the ratio between duration of receiving energy with desired temperature to total discharge time of the packed bed, during the discharge process. Results indicate that by setting the layer heights of the PCMs in a descending order and also having the porosity of each layer to decrease in the flow direction, results with 29.2% better performance can be obtained. Optimization of Delta(tutl) can be a defining factor in designing of packed beds and also a concentrating solar power (CSP) plant.
机译:近年来,最重要的问题之一是热能存储技术的优化。使用具有特定相变温度的相变材料(PCM),我们可以将潜热存储为热能。这是存储热能的最有效方法之一。本文的目的是通过Comsol多物理软件的CFD模型研究填充多层高温封装PCM的填充床的排放性能。仿真结果与文献的实验研究结果进行了比较,两者之间有很好的一致性。分析了每个层的高度和孔隙度以及相变材料的不同配置(根据相变温度(在流动方向上的上升和下降))的影响。观察到,增加热交换流体的入口速度(HTF)和增加填充床中PCM层的孔隙率具有相似的结果,并使填充床更快速地耗尽。建议并优化了一些有关Δt(tutl)的新配置,Δttu定义为在放电过程中,具有所需温度的接收能量的持续时间与填充床总放电时间之间的比率。结果表明,通过将PCM的层高设置为降序并在流动方向上减小每一层的孔隙率,可以获得29.2%的更好性能的结果。 Delta(tutl)的优化可能是设计填充床以及集中式太阳能发电(CSP)厂的决定性因素。

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