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Modelling of dilatancy-controlled gas flow in saturated bentonite with double porosity and double effective stress concepts

机译:双孔隙率饱和膨润土稀释性控制气流的建模与双有效应力概念

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Dilatancy-controlled gas flow is a dominant process of gas migration in saturated bentonite. In this paper, a fully coupled hydro-mechanical model, which incorporates the concepts of double porosity and double effective stress, is developed to simulate the gas migration process in saturated bentonite. Double effective stress is derived based on the first law of thermodynamics and the mixture theory. The volumetric strain which is work-conjugated to each effective stress level is explicitly included in the mass balance equations. Thus, the resultant mass balance equations are more robust from the viewpoint of thermodynamics. The developed model is successfully validated against the results of three laboratory tests conducted under different mechanical boundary conditions. In general, the model is able to well simulate the main experimental behaviors, including the gas breakthrough, the volume dilation, the matrix consolidation, the build-up of water pressure and the “shut-in” pressure. Two important processes that contribute to the development of preferential pathways, i.e., the dilation of the fractured porous media and the consolidation of the porous continuum, have been successfully identified by the model.
机译:膨胀控制的气流是饱和膨润土中气体迁移的主要过程。本文采用完全耦合的水力 - 机械模型,其含有双孔隙率和双重有效应力的概念,以模拟饱和膨润土中的气体迁移过程。基于第一热力学和混合理论的第一定律来得出双重有效应力。与每个有效应力水平一起缀合的体积菌株明确地包括在质量平衡方程中。因此,从热力学的观点来看,所得质量平衡方程更稳健。开发模型与在不同机械边界条件下进行的三种实验室测试的结果成功验证。一般而言,该模型能够良好地模拟主要的实验行为,包括气体突破,体积扩张,基质固结,水压的积聚和“闭合”压力。模型成功地鉴定了促进优先途径的发展的两个重要过程,即骨折多孔介质的扩张和多孔连续素的固结。

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