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Performance comparison of a group of thermal conductivity enhancement methodology in phase change material for thermal storage application

机译:储热应用相变材料中一组导热系数提高方法的性能比较

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Phase change materials (PCM) are able to store thermal energy when becoming liquids and to release it when freezing. Recently the use of PCM materials for thermal energy storage (TES) at high temperature for Concentrated Solar Power (CSP) technology has been widely studied. One of the main investigated problems is the improvement of their low thermal conductivity. This paper looks at the current state of research in the particular field of thermal conductivity enhancement (TCE) Mechanisms of PCM to be used as TES. This work considers a numerical approach to evaluate the performance of a group of TCE solutions composed by particular configurations of two of the principal TCE systems found on the literature:. finned pipes and conductive foams. The cases are compared against a single PCM case, used as reference. Three different grades of graphite foams have been studied, presenting a charge time 100 times lower than the reference case for the same capacity. For fins two materials are analyzed: carbon steel and aluminum. The charge times of fin cases are from 3 to 15 times faster, depending on the amount and type of material employed. The internal mechanisms are analyzed to understand the results and locate possible improvement. (C) 2016 Elsevier Ltd. All rights reserved.
机译:相变材料(PCM)在变成液体时能够存储热能,在冻结时能够释放热能。最近,已经广泛研究了将PCM材料用于高温太阳能(CSP)技术的高温热能存储(TES)。研究的主要问题之一是其低导热率的改进。本文着眼于PCM的热导率增强(TCE)机理作为TES的特定领域的研究现状。这项工作考虑了一种数值方法来评估一组TCE解决方案的性能,该方法由文献中发现的两个主要TCE系统的特定配置组成。翅片管和导电泡沫。将这些案例与单个PCM案例进行比较,以用作参考。已经研究了三种不同等级的石墨泡沫,对于相同容量,其充电时间比参考情况低100倍。对于鳍片,分析了两种材料:碳钢和铝。翅片盒的充电时间快3到15倍,具体取决于所用材料的数量和类型。分析内部机制以了解结果并确定可能的改进。 (C)2016 Elsevier Ltd.保留所有权利。

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