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Mechanics of adsorption-deformation coupling in porous media

机译:多孔介质中吸附-变形耦合的力学

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This work extends Coussy's macroscale theory for porous materials interacting with adsorptive fluid mixtures. The solid-fluid interface is treated as an independent phase that obeys its own mass, momentum and energy balance laws. As a result, a surface strain energy term appears in the free energy balance equation of the solid phase, which further introduces the so-called adsorption stress in the constitutive equations of the porous skeleton. This establishes a fundamental link between the adsorption characteristics of the solid-fluid interface and the mechanical response of the porous media. The thermodynamic framework is quite general in that it recovers the coupled conduction laws, Gibbs isotherm and the Shuttleworth's equation for surface stress, and imposes no constraints on the magnitude of deformation and the functional form of the adsorption isotherms. A rich variety of coupling between adsorption and deformation is recovered as a result of combining different poroelastic models (isotropic vs. anisotropic, linear vs. nonlinear) and adsorption models (unary vs. mixture adsorption, uncoupled vs. stretch-dependent adsorption). These predictions are discussed against the backdrop of recent experimental data on coal swelling subjected to CO2and CO2CH4injections, showing the capability and versatility of the theory in capturing adsorption-induced deformation of porous materials.
机译:这项工作扩展了库西关于多孔材料与吸附性流体混合物相互作用的宏观理论。固液界面被视为一个独立的相,遵循其自身的质量,动量和能量平衡定律。结果,在固相的自由能平衡方程中出现了表面应变能项,这在多孔骨架的本构方程中进一步引入了所谓的吸附应力。这在固液界面的吸附特性和多孔介质的机械响应之间建立了基本的联系。热力学框架的通用性很强,它可以恢复耦合的传导定律,吉布斯等温线和表面应力的Shuttleworth方程,并且对变形的大小和吸附等温线的功能形式没有任何限制。通过结合不同的多孔弹性模型(各向同性与各向异性,线性与非线性)和吸附模型(一元与混合物吸附,解耦与拉伸依赖性吸附),可以恢复吸附与变形之间的多种耦合。这些预测是在最近有关注入二氧化碳和二氧化碳的煤溶胀实验数据的背景下进行讨论的,显示了该理论在捕获吸附引起的多孔材料变形中的能力和多功能性。

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