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Numerical Investigation of Effective Thermal Conductivity of Strut-Based Cellular Structures Designed by Spatial Voronoi Tessellation

机译:空间Voronoi曲面细分基于支柱的蜂窝结构有效导热性的数值研究

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摘要

Porous materials possess light weight and excellent thermal insulation performance. For disordered porous structures, the number of seed points is an important design parameter which is closely related to the morphology and mean pore size of the structure. Based on the arrangement of points in three-dimensional space, seven kinds of structures were designed by spatial Voronoi tessellation in this paper. The effect of the number of seed points on effective thermal conductivity for Voronoi was studied. Numerical simulation was conducted to research the effects of structural porosity, filling material and structural orientation on the effective thermal conductivity and heat transfer characteristics. The results showed that the effective thermal conductivity is closely related to the porosity and the matrix material. Different number and arrangement of seed points make the structure have different anisotropic performance due to different thermal paths. In addition, required the least number of seed points was obtained for the designation of isotropic random Voronoi.
机译:多孔材料具有轻质和优异的保温性能。对于无序的多孔结构,种子点的数量是与结构的形态和平均孔径密切相关的重要设计参数。基于三维空间点的排列,本文采用空间Voronoi曲面细分设计了七种结构。研究了种子点数对voronoi的有效导热率的影响。进行数值模拟以研究结构孔隙率,填充材料和结构取向对有效导热性和传热特性的影响。结果表明,有效的导热率与孔隙率和基质材料密切相关。种子点的不同数量和排列使得由于不同的热路径,该结构具有不同的各向异性性能。此外,所需的时间是对各向同性随机voronoi的指定获得的最少的种子点。

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