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Nonlinear effective properties of unsaturated porous materials

机译:不饱和多孔材料的非线性有效特性

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We have investigated the nonlinear responses in terms of effective properties of unsaturated porous materials using a numerical framework. The multiphase microstructure is reconstructed through a random generation-growth method, and the transport governing equations are solved efficiently by a lattice Boltzmann model. After validation, the present framework is used to study the nonlinear behavior of thermal conductivity and electrical permittivity caused by the saturation degree and the phase interaction for multiphase materials. The results show that the effective thermal conductivity of unsaturated porous materials changes with the phase interaction ratio, while the effective permittivity decrease monotonously with the phase interaction. Mechanism analyses indicate that these nonlinear behaviors lie in the role of the liquid phase in the transport. For the thermal conductivity, the liquid phase plays a "bridge" function because its conductivity is between those of the solid and the gas. A better bridge network would enhance the overall effective thermal conductivity. However for the electrical permittivity, the liquid phase acts the leading force for transport and a more effective liquid phase connection will hence lead to a higher effective electrical permittivity of the multiphase system.
机译:我们使用数值框架研究了不饱和多孔材料的有效特性方面的非线性响应。通过随机生成-​​增长方法重建多相组织,并利用晶格玻尔兹曼模型有效地求解输运控制方程。经过验证,本框架用于研究由多相材料的饱和度和相相互作用引起的热导率和介电常数的非线性行为。结果表明,不饱和多孔材料的有效导热系数随相相互作用比而变化,有效介电常数随相相互作用而单调降低。机理分析表明,这些非线性行为在于液相在运输中的作用。对于导热性,液相起着“桥”的作用,因为它的导热率介于固体和气体的导热率之间。更好的桥接网络将提高总体有效导热率。但是,对于介电常数,液相起着输送的主导作用,因此,更有效的液相连接将导致多相系统的更高的有效介电常数。

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