首页> 外文会议>ASME international heat transfer conference;IHTC14 >STUDY ON THE EFFECTIVE THERMAL CONDUCTIVITY OF MACRO, MIRCO, AND NANO POROUS MATERIALS IN THE LIGHT OF THE KNUDSEN CONDUCTION/RADIATION COUPLING EFFECT
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STUDY ON THE EFFECTIVE THERMAL CONDUCTIVITY OF MACRO, MIRCO, AND NANO POROUS MATERIALS IN THE LIGHT OF THE KNUDSEN CONDUCTION/RADIATION COUPLING EFFECT

机译:从Knudsen传导/辐射耦合效应的角度研究宏观,微观和纳米多孔材料的有效热导率

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Thermal transport phenomena in porous media are characterized by conduction through solid matrix and filling gas, and also by radiation. The gas is dispersed in the porous system depending on the pore size distribution. In each pore, the gas contributes to the heat transfer between the pore surfaces. This effect is strongly influenced by pore size, gas atmosphere, accommodation coefficient and other factors. A recent publication of the present authors focused on modeling the change of the effective thermal conductivity when the gas atmosphere is changed. In the current contribution, the effect of pore size distribution on heat transfer in macro, micro, and nano insulation materials is presented. Samples were chosen from five different highly porous materials with different pore size distribution within the macro, micro, and nano classes. Porosity and pore size distribution of the samples were chosen to get a clear characterization of the materials. The effective thermal conductivity was measured by applying the radial heat flow method at temperatures up to 1000 °C. Evaluating Knudsen effect from the pore size distribution alone does not give plausible explanation for the measured thermal conductivity. However, it is important to consider the kind of connections between the pores. In case of nano materials, the radiation effect proves to be strongly dependent on the Knudsen number.
机译:多孔介质中的热传输现象的特征是通过固体基质和填充气体的传导,以及辐射。取决于孔径分布,气体分散在多孔系统中。在每个孔中,气体有助于孔表面之间的热传递。孔径,气体气氛,调节系数和其他因素会严重影响该效果。本发明人的最新出版物集中于对当气体气氛改变时有效热导率的改变进行建模。在当前的贡献中,提出了孔径分布对宏观,微米和纳米隔热材料中传热的影响。样品是从五种不同的高度多孔材料中选择的,这些材料在宏观,微观和纳米类别中具有不同的孔径分布。选择样品的孔隙率和孔径分布以清楚地表征材料。有效热导率是通过在高达1000°C的温度下应用径向热流法测量的。仅从孔径分布评估克努森效应并不能为所测得的导热率提供合理的解释。但是,重要的是要考虑孔之间的连接类型。在纳米材料的情况下,辐射效应被证明强烈依赖于克努森数。

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