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Analysis and modeling of the pore size effect on the thermal conductivity of alumina foams for high temperature applications

机译:高温应用对氧化铝泡沫导热率的分析与建模

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Analytical and finite element analyses were carried out to investigate the influence of the pore sizes on the effective thermal conductivity, which is the main physical property related to the ceramic microstructure insulating capacity at high temperatures. Thermal conductivity was estimated by analytical models using Litovslcy's and Rosseland's approaches for a monodisperse pore distribution, whereas via finite element analysis a high porosity microstructure with three different pore sizes was investigated. Based on this, an ideal pore size range (0.5-3.0 mu m) was found that optimizes the reduction of thermal energy transmission in the 1000-1700 degrees C range. Furthermore, the ideal pore size range seems to be independent of the ceramic foam material. When considering a pore size distribution, the ideal range is narrowed due to less effective thermal radiation scattering by sub-micron and large pores. The results obtained showed that nanopores (< 0.1 mu m) are not the best option to reduce thermal conductivity at high temperatures. This statement is supported by experimental data on nanopore aerogels, which show a significant thermal conductivity increase at the high temperature range.
机译:进行分析和有限元分析以研究孔径对有效导热率的影响,这是与高温下陶瓷微观结构绝缘容量有关的主要物理性质。通过利用Litovslcy和Rosseland对单分散孔分布的方法来估计导热率,而通过有限元分析,研究了具有三种不同孔径的高孔隙率微观结构。基于此,发现理想的孔径范围(0.5-3.0μm),优化1000-1700℃范围内的热能传输的减少。此外,理想的孔径范围似乎与陶瓷泡沫材料无关。在考虑孔径分布时,由于亚微米和大孔隙散射较小的热辐射散射,理想范围变窄。得到的结果表明,纳米孔(<0.1μm)不是降低高温导热率的最佳选择。该陈述得到了纳米孔气凝胶的实验数据支持,其在高温范围内显示出显着的导热率。

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