Computational thermal conductivity in polyurethane mixed cell foam: Numerical boundary effects and hybrid model

C. Hermama , B. Bensiali , S. Lahbabi , A. El Maliki
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引用次数: 2

Abstract

The effective thermal conductivity is the most useful characteristic property to distinguish between two or more insulation materials. It is always the same by using different boundary conditions or different representative elementary volume sizes. The objective of this paper is to set variational formulations of different types of boundary conditions Dirichelet boundary condition (EBC), Neumann boundary condition (NBC), Mixed boundary condition (MBC) and Periodic boundary condition (PBC). Then effective thermal conductivity are investigated by scale effect study of the representative elementary volume size of the different categories of Polyurethane foam, closed cell foam, open cell foam and mixed cell foam. The apparent conductivity remain the same for MBC, PBC and EBC in the case of closed and open unit cell foam. The effective thermal conductivity for the different categories of PU foam converge as the REVs sizes increase. A comparative study with numerical, analytical and experimental thermal conductivity is performed in order to validate the results. A hybrid model is proposed in order to overcome the computational cost of the investigation of the effective thermal conductivity of mixed cell foam.

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聚氨酯混合孔泡沫的计算导热系数:数值边界效应和混合模型
有效导热系数是区分两种或多种绝缘材料的最有用的特性。通过使用不同的边界条件或不同的代表性基本体积大小,它总是相同的。本文的目的是建立不同类型边界条件Dirichelet边界条件(EBC)、Neumann边界条件(NBC)、混合边界条件(MBC)和周期边界条件(PBC)的变分公式。然后,通过对不同类型聚氨酯泡沫、闭孔泡沫、开孔泡沫和混合孔泡沫具有代表性的基本体积尺寸的尺度效应研究,考察其有效导热系数。在闭孔和开孔泡沫情况下,MBC、PBC和EBC的表观电导率保持不变。不同类型聚氨酯泡沫的有效导热系数随着转速的增大而趋于一致。通过数值、解析和实验对比研究验证了所得结果。为了克服混合孔泡沫有效导热系数研究的计算成本,提出了一种混合孔泡沫有效导热系数计算模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Materials Science for Energy Technologies
Materials Science for Energy Technologies Materials Science-Materials Science (miscellaneous)
CiteScore
16.50
自引率
0.00%
发文量
41
审稿时长
39 days
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