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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Thermal conductivity improvement of phase change materials/graphite foam composites
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Thermal conductivity improvement of phase change materials/graphite foam composites

机译:相变材料/石墨泡沫复合材料导热系数的提高

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Effective thermal conductivity of composites of graphite foam infiltrated with phase change materials (PCM) was investigated numerically and experimentally. Graphite foam, as a highly-conductive, highly-porous structure, is an excellent candidate for infiltrating PCM into its pores and forming thermal energy storage composites with improved effective thermal conductivity. For numerical simulation, the graphite structure was modeled as a three-dimensional body-centered cube arrangement of uniform spherical pores, saturated with PCM thus forming a cubic representative elementary volume (REV). Thermal analysis of the developed REV was conducted for unidirectional heat transfer and the total heat flux was determined, which leads to the effective thermal conductivity evaluation. For experimental verification, a sample of graphite foam was infiltrated with PCM. The effective thermal conductivity was evaluated using the direct method of measuring temperature within the sample under fixed heat flux in unidirectional heat transfer. The results indicate a noticeable improvement in the effective thermal conductivity of composites compared to the PCM. Our numerical and experimental results are in agreement and are also consistent with reported experimental results on graphite foam. Moreover, the role of natural convection within the pores is found to be negligible.
机译:数值和实验研究了相变材料(PCM)渗入的石墨泡沫复合材料的有效导热系数。石墨泡沫作为一种高导电性,高多孔性的结构,是将PCM渗入其孔中并形成具有提高的有效导热率的热能存储复合材料的极佳候选者。为了进行数值模拟,将石墨结构建模为均匀的球形孔的三维体心立方排列,并用PCM饱和,从而形成了立方代表基本体积(REV)。对开发的REV进行热分析以进行单向传热,并确定总热通量,从而进行有效的热导率评估。为了进行实验验证,用PCM渗入了石墨泡沫样品。有效的热导率是使用直接方法在单向传热中以固定热通量测量样品内部温度的方法来评估的。结果表明,与PCM相比,复合材料的有效导热率有了显着提高。我们的数值和实验结果是一致的,也与报道的石墨泡沫实验结果一致。此外,发现孔内自然对流的作用可以忽略。

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