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首页> 外文期刊>Transport in Porous Media >Pore-Scale Simulations of Simultaneous Steady-State Two-Phase Flow Dynamics Using a Lattice Boltzmann Model: Interfacial Area, Capillary Pressure and Relative Permeability
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Pore-Scale Simulations of Simultaneous Steady-State Two-Phase Flow Dynamics Using a Lattice Boltzmann Model: Interfacial Area, Capillary Pressure and Relative Permeability

机译:使用格子Boltzmann模型的同步稳态两相流动动力学的孔隙尺度模拟:界面区域,毛细管压力和相对渗透率

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摘要

The dynamics of simultaneous flow of immiscible two-phase fluids at the steady state in the capillary force-dominated regime were investigated. It was described by the key state variables, including interfacial area between fluids, capillary pressure and relative permeability, as functions of fluid saturation. Based on the two-dimensional pore-scale simulations using the Shan-Chen multi-component lattice Boltzmann model (SCMC-LBM), the steady-state interfacial area, capillary pressure and relative permeability versus saturation relationships subjected to flow conditions, such as initial fluid distribution, saturation history and magnitude of hydraulic gradient, were examined. Also, the intrinsic differences in the interfacial area and capillary pressure versus saturation curves between at dynamic equilibrium in the steady-state infiltration and at quasi-static equilibrium in the transient displacement were explored. As the SCMC-LBM simulations revealed, the relative permeabilities of both fluids were insensitive to initial fluid distribution or saturation history because of the simultaneous steady-state flow dynamics, but dependent on the magnitude of hydraulic gradient due to the existence of a threshold hydraulic gradient. The hysteresis behaviours of interfacial area-saturation and capillary pressure-saturation curves were captured in the transient displacement but absent in the steady-state infiltration, and the unique interfacial area-capillary pressure-saturation surface at dynamic equilibrium did not tend to overlap with the one at quasi-static equilibrium. The hysteretic capillary pressure behaviour for these two flow patterns was of great theoretical and practical significances.
机译:研究了在毛细管力主导的状态下稳定状态下不混溶的两相流体同时流动的动态。它是由关键状态变量描述的,包括流体,毛细管压力和相对渗透性之间的界面区域,作为流体饱和的函数。基于使用Shan-Chen多组分晶格Boltzmann模型(SCMC-LBM)的二维孔隙尺度模拟,稳态界面面积,毛细管压力和相对渗透率与流动条件进行的饱和关系,例如初始检查了液压梯度的流体分布,饱和历史和幅度。而且,探讨了瞬态渗透中动态平衡和在瞬态位移中的动态平衡的界面区域和毛细管压力与饱和曲线之间的内在差异。随着SCMC-LBM模拟的显示,由于同时稳态流动动态,因此,两种流体的相对渗透率对初始流体分布或饱和历史不敏感,但由于阈值液压梯度的存在,因此取决于液压梯度的大小。在瞬态移位中捕获界面区域饱和度和毛细管压力饱和曲线的滞后行为,但在稳态渗透中没有,并且动态均衡的独特界面区域 - 毛细管压力饱和表面并未与之重叠一个在准静态平衡。这两个流动模式的滞回毛细管压力行为具有很大的理论和实际意义。

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