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A numerical study on the combined effect of dispersed nanoparticles and embedded heat pipes on melting and solidification of a shell and tube latent heat thermal energy storage system

机译:分散的纳米颗粒与嵌入式热管对壳管式潜热热能存储系统融化和凝固作用的数值研究

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摘要

The thermal analysis of melting and solidification processes of Rubitherm 55 in a vertical shell and tube based latent heat thermal storage unit is presented in this study. To resolve the low heat transfer rate issue within the phase change material due to its low thermal conductivity, hybrid enhancement methods are considered. Heat pipes are placed horizontally to act as a bridge between the heat transfer fluid and the phase changed material stored in the shell. In addition, nanoparticles with high thermal conductivity are added to the phase change material. Aluminum oxide, silver, copper and copper oxide are the nanoparticles used for this study. The effects of various parameters, such as the heat pipes quantity, nanoparticles type, and concentration are studied on the overall performance of the system. It was concluded that embedding heat pipes significantly decreases the melting and solidification times. It was also shown that increasing the nanoparticles concentration decreases the melting or solidification time as well as the stored or released energy per unit of mass. However, the significance of the effect of type of nanoparticles was dependent upon the quantity of the heat pipes in the storage unit.
机译:本研究介绍了立式壳管式潜热蓄热单元中Rubitherm 55的熔化和凝固过程的热分析。为了解决由于其低导热率而导致的相变材料内的低传热率问题,考虑了混合增强方法。热管水平放置,以充当传热流体和存储在外壳中的相变材料之间的桥梁。另外,将具有高导热率的纳米颗粒添加到相变材料中。氧化铝,银,铜和氧化铜是用于本研究的纳米颗粒。研究了诸如热管数量,纳米颗粒类型和浓度等各种参数对系统整体性能的影响。得出的结论是,嵌入热管可显着减少熔化和固化时间。还显示出增加纳米颗粒浓度降低了熔化或固化时间以及每单位质量的存储或释放的能量。但是,纳米颗粒类型的影响的重要性取决于存储单元中热管的数量。

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