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首页> 外文期刊>Journal of porous media >RELATIVE PERMEABILITIES CHARACTERIZATION IN CHEMICAL FLOODING WITH THE CONSIDERATION OF VISCOSITY RATIO AND INTERFACIAL TENSION BY A PORE-SCALE NETWORK MODEL
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RELATIVE PERMEABILITIES CHARACTERIZATION IN CHEMICAL FLOODING WITH THE CONSIDERATION OF VISCOSITY RATIO AND INTERFACIAL TENSION BY A PORE-SCALE NETWORK MODEL

机译:考虑黏度比和界面张力的化学驱替相对渗透率特征的超大规模网络模型

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摘要

A dynamic pore-scale network model is presented for investigating the effects of interfacial tension and oil-water viscosity on relative permeability during chemical flooding. This model takes into account both viscous and capillary forces in analyzing the impacts of chemical properties on flow behavior or displacement configuration, as opposed to the conventional or invasion percolation algorithm which incorporates capillary pressure only. The study results indicate that both water and oil relative-permeability curves are dependent strongly on interfacial tension as well as an oil-water viscosity ratio. In particular, water and oil relative-permeability curves are both found to shift upward as interfacial tension is reduced, and they both tend to become linear versus saturation once interfacial tension is at low values. In addition, the oil-water viscosity ratio appears to have only a small effect under conditions of high interfacial tension. When the interfacial tension is low, however, water relative permeability decreases more rapidly (with the increase in the aqueous-phase viscosity) than oil relative permeability. The breakthrough saturation of the aqueous phase during chemical flooding tends to decrease with the reduction of interfacial tension and may also be affected by the oil-water viscosity ratio.
机译:提出了一种动态孔隙尺度网络模型,用于研究化学驱过程中界面张力和油水粘度对相对渗透率的影响。与仅包含毛细管压力的常规或侵入渗流算法相反,该模型在分析化学性质对流动行为或位移构型的影响时考虑了粘性力和毛细管力。研究结果表明,水和油的相对渗透率曲线都强烈依赖于界面张力以及油水粘度比。特别是,发现水和油的相对渗透率曲线都随着界面张力的降低而向上移动,并且一旦界面张力处于较低值,它们都趋于相对于饱和度呈线性。另外,在高界面张力的条件下,油水粘度比似乎仅具有很小的作用。但是,当界面张力低时,水相对渗透率比油相对渗透率下降得更快(随着水相粘度的增加)。化学驱过程中水相的突破饱和度趋于随着界面张力的降低而降低,并且还可能受到油水粘度比的影响。

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