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Pore-Level Simulation of Heavy Oil Reservoirs; Competition of Capillary, Viscous, and Gravity Forces

机译:重油箱孔径仿真;毛细管,粘稠和重力力的竞争

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The advancing high resolution scanning technology has formed a concrete basis for simulation of pore events within microstructures. Interactions between capillary, gravity, and viscous forces result in complex flow phenomena affecting pore-scale physics and phase distributions during different displacement scenarios. Consequently, a myriad of techniques has been proposed to deal with all effective forces and dynamically simulate pore scale multi-phase flow physics. In this regard, the significance of each force, particularly viscous forces, on pore-level flow morphology is not yet well studied. Here, the Navier-Stokes equation along with a VOF volume tracking advection equation is applied for simulation of two-phase displacement scenarios considering gravity, capillary, and viscous forces. A pore-throat pair is used as a simple pore-level geometry to conduct a comprehensive sensitivity analysis and investigate the effect of viscosity, IFT, contact angle and velocity on the trapping amount of non-wetting phase. The results are in good agreement with available experimental data and confirm that in pore-level transport phenomena, the amount of residual trapping is a function of pore-throat geometry and wettability and is not affected greatly by interfacial tension or differences of viscosity. The analysis also demonstrates that within microscale porous media images the gravity role is negligible due to low Bond number values. A pore morphology- based quasi-static approach is then applied to a multi-pore micro-tomographic sandstone image to simulate drainage, and imbibition processes and investigate the effect of geometry, contact angle, and IFT on the amount of heavy oil residual trapping.
机译:推进高分辨率扫描技术已经形成了微观孔隙内事件的模拟的具体依据。毛细管,重力和粘性力之间的相互作用导致影响在不同的位移情形孔隙尺度物理和相位分布复杂流动现象。因此,技术无数已经提出了应对一切有效力量和动态模拟孔隙尺度多相流物理学。在这一点上,各方力量,特别是粘性力,孔隙级流动形态的重要性还没有很好的研究。在这里,用VOF体积跟踪平流方程沿Navier-Stokes方程被应用于的考虑重力,毛细管,和粘性力两相位移场景仿真。甲孔喉对被用作简单的孔隙水平几何进行全面敏感性分析和调查粘度,IFT,接触角和速度对非润湿相的捕集量的效果。的结果与实验数据,并确认在孔级别的传输现象,残留捕集的量孔喉的几何形状和润湿性的功能,并且不被界面张力或粘度的差异大大影响了良好的一致性。该分析还表明,微观多孔介质图像内的重力作用是低Bond数值可以忽略不计所致。然后细孔morphology-基于准静态方法应用于多孔微断层图像砂岩以模拟排水,吸液过程和调查的几何形状,接触角,和IFT对重油残余捕集的量的效果。

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