Thermal Conduction in Deforming Isotropic and Anisotropic Granular Porous Media with Rough Grain Surface

被引:0
作者
Roohollah Askari
S. Hossein Hejazi
Muhammad Sahimi
机构
[1] Michigan Technological University,Department of Geological and Mining Engineering and Sciences
[2] University of Calgary,Department of Chemical and Petroleum Engineering
[3] University of Southern California,Mork Family Department of Chemical Engineering and Materials Science
来源
Transport in Porous Media | 2018年 / 124卷
关键词
Roughness deformation; Anisotropy; Thermal conductivity; Granular porous media; Thermal contact resistance;
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中图分类号
学科分类号
摘要
Resistance to the heat flow in solid–solid contact areas plays a fundamental role in heat transfer in unconsolidated porous materials. In the present work, we study thermal conduction in granular porous media that undergo deformation due to an external compressing pressure. The media’s grains have rough surface, with the roughness profile following the statistics of self-affine fractals that have been shown to be abundant in natural porous media. We utilize a fractal contact model of rough surfaces in order to estimate the deformation of the contact areas, which is a function of roughness fractal parameters, the grains’ Young modulus, and the compressing pressure. For porous media saturated by a single fluid, the effects of various factors, such as the porosity, the grains’ overlap (consolidation), and shapes (circular vs. elliptical), are all studied. Increasing the compressing pressure enhances heat transfer due to deformation of the rough surface of the gains. The thermal conductivity of the medium is strongly affected by the porosity, when the grains’ conductivity is much larger than that of the fluid that saturates the pore space. Furthermore, we show that thermal anisotropy is a decreasing function of roughness deformation. In other words, granular media with rougher grains exhibit larger anisotropy as measured by the ratio of the directional thermal conductivities. Whereas in one type of granular media the anisotropy eventually vanishes at very high compressing pressure, it persists in a second model of anisotropic media that we study.
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页码:221 / 236
页数:15
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