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Solidification enhancement with multiple PCMs, cascaded metal foam and nanoparticles in the shell-and-tube energy storage system

机译:壳管式储能系统中的多个PCM,级联金属泡沫和纳米颗粒增强了固化

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摘要

The thermal response of the shell-and-tube energy storage system consisting of multiple segments holding separate phase-change materials (PCMs) of different melting points was studied. Nanoparticles in PCM of 5% volume fraction with cascaded (multiple-segment) metal foam of average porosity 0.95 were applied the heat-transfer enhancement. A simulation model that accounts for the non-Darcy effects of cascaded foam and Brownian motion of nanoparticles was developed and validated with previous experimental studies. The impact of using different arrangements of multiple PCMs, multiple PCMs with nanoparticles, and multiple PCMs with cascaded foam on the time-based solidification evolution was investigated. The module that combines multiple PCMs with cascaded foam showed the best thermal response rate. Compared to the module of single PCM with no nanoparticles or cascaded foam, the full solidification time saving was up to 94% depending on the number of multiple PCMs and number of cascaded foam segments. Although solidification time decreases as the number of foam segments and/or number of multiple PCMs increases, the choice of adequate small number of multiple PCMs and foam segments is recommended. This reduces design limitations associated with cascading of the containment vessel and does not significantly affect the positive role of natural convection during the early period of the solidification.
机译:研究了由多个段组成的壳管式储能系统的热响应,这些段保持着不同熔点的不同相变材料(PCM)。在5%体积分数的PCM中使用级联(多段)平均孔隙度为0.95的金属泡沫纳米颗粒进行传热。建立了模拟模型,该模型说明了级联泡沫的非达西效应和纳米粒子的布朗运动,并已通过先前的实验研究进行了验证。研究了使用多个PCM,带有纳米颗粒的多个PCM和带有级联泡沫的多个PCM的不同布置对基于时间的凝固演变的影响。将多个PCM与级联泡沫相结合的模块显示出最佳的热响应率。与没有纳米颗粒或不带级联泡沫的单个PCM模块相比,完全固化时间节省高达94%,具体取决于多个PCM的数量和级联泡沫段的数量。尽管随着泡沫段数量和/或多个PCM数量的增加,固化时间会减少,但建议选择足够数量的多个PCM和泡沫段。这减少了与安全壳级联相关的设计限制,并且在固化的早期阶段不会显着影响自然对流的积极作用。

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