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Enhanced performances of macro-encapsulated phase change materials (PCMs) by intensification of the internal effective thermal conductivity

机译:通过增强内部有效热导率来增强宏观封装相变材料(PCM)的性能

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摘要

Performances of spherical macrocapsules (nodules) currently used in latent heat-based thermal energy storage (TES) industrial units have been enhanced by the addition of graphite particles to the phase change material (PCM). Two different graphite types, namely graphite flakes (CF) and expanded natural graphite (ENG), have been tested at constant PCM content in the nodule. Using water as PCM, both graphite types have been proven to lead to significant reduction in storage/discharge durations (up to 35% and 58% for a graphite load of only 13%_(wt)) without reduction in storage capacity. Therefore, enhancement using ENG greatly enhances efficiency, but it is also more expensive. GF maybe preferred, considering both its ease of use and economical issues. At the highest experimented graphite load (13%_(wt)) the overall thermal behavior of the nodule is advantageously improved, with simultaneously no apparent supercooling.a very stable phase change plateau, and very sharp and straight sensible heat exchange periods. The graphites induce both extensive thermal power enhancement and improvement in thermal behaviors. These experimental results have been simulated using numerical Comsol~®-based models with success. The simulated charge/discharge steps have shown that the air gap present in the nodules induces modifications in the phase change front profile only at the beginning of the periods.
机译:通过在相变材料(PCM)中添加石墨颗粒,增强了目前在基于潜热的热能存储(TES)工业装置中使用的球形大胶囊(结节)的性能。两种不同类型的石墨,即石墨片(CF)和膨胀的天然石墨(ENG),已在结核中以恒定PCM含量进行了测试。使用水作为PCM,已证明两种石墨类型均可以显着减少存储/放电持续时间(对于仅13%_(wt)的石墨负载,最多可降低35%和58%),而不会降低存储容量。因此,使用ENG进行增强可以大大提高效率,但是也更昂贵。考虑到它的易用性和经济性,GF可能是首选。在最高的石墨负载试验(13%_(wt))下,结核的整体热性能得到了改善,同时没有明显的过冷。非常稳定的相变平稳期,以及非常尖锐和笔直的显着的热交换期。石墨既引起广泛的热功率增强,又引起热性能的改善。这些实验结果已成功地使用基于Comsol〜®的数值模型进行了仿真。模拟的充电/放电步骤表明,仅在周期开始时,结核中的气隙才会引起相变前轮廓的改变。

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  • 来源
    《Energy》 |2013年第15期|956-964|共9页
  • 作者单位

    PROMES CNRS Laboratory, Universityof Perpignan Via Domitia, Rambla de la Thermodynamique, Tecnosud, 66100 Perpignan, France,CIC Energigune, Albert Einstein 48, 01510 - Minano (Alava) Spain;

    PROMES CNRS Laboratory, Universityof Perpignan Via Domitia, Rambla de la Thermodynamique, Tecnosud, 66100 Perpignan, France;

    PROMES CNRS Laboratory, Universityof Perpignan Via Domitia, Rambla de la Thermodynamique, Tecnosud, 66100 Perpignan, France;

    Universite de Pau et des Pays de I'Adour, LaTEP - EA 1932, Laboratoire de Thermique, Energetique el Procedes, ENSGTI, Rue Jules Ferry, BP 7511, PAU,F-64075, France;

    Universite de Pau et des Pays de I'Adour, LaTEP - EA 1932, Laboratoire de Thermique, Energetique el Procedes, ENSGTI, Rue Jules Ferry, BP 7511, PAU,F-64075, France;

    CRISTOPIA Energy Systems, 78 chemin du Moulin de la Clue Quartier Cayregues 06140 VENCE, France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Phase change materials (PCMs); Thermal energy storage (TES); Heat transfer enhancement; Macro-encapsulation; Thermal conductivity; Graphite;

    机译:相变材料(PCM);热能存储(TES);传热增强;宏封装;导热系数;石墨;

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