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On the Construction of an Experimentally Based Set of Equations to Describe Cocurrent and Countercurrent, Two-Phase Flow of Immiscible Fluids Through Porous Media

机译:基于实验的方程组的构建,用于描述不混溶流体通过多孔介质的并流和逆流两相流

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Generalized flow equations developed for two-phase flow through porous media contain a second term that enables proper account to be taken of capillary coupling between the two flowing phases. In this study, a partition concept, together with a novel capillary pressure equation for countercurrent flow, have been introduced into Kalaydjian’s generalized flow equations to construct modified flow equations which enable a better understanding of the role of capillary coupling in horizontal, two-phase flow. With the help of these equations it is demonstrated that the reduced flux observed in countercurrent flow, as compared to cocurrent flow, can be explained by the reduction in the driving force per unit volume which comes about because of capillary coupling. Also, it is shown experimentally that, because fluids flow through a void space reduced in magnitude due to the presence of immobile irreducible and residual saturations, the capillary coupling parameter should be defined in terms of a reduced porosity, rather than in terms of porosity. Moreover, it is shown statistically that the countercurrent relative permeability curve is proportional to the cocurrent relative permeability curve, the constant of proportionality being the capillary coupling parameter. Finally it is suggested that one can eliminate the need to determine experimentally countercurrent relative permeability curves by making use of an equation constructed for predicting the magnitude of the capillary coupling parameter.
机译:为通过多孔介质的两相流动而开发的通用流动方程包含第二项,可以适当考虑两个流动相之间的毛细管耦合。在这项研究中,将分界概念以及用于逆流的新型毛细管压力方程式引入了Kalaydjian的广义流动方程式中,以构建修正后的流动方程式,从而能够更好地理解毛细管耦合在水平两相流中的作用。借助于这些方程式证明,与顺流相比,在逆流中观察到的通量减少可以通过由于毛细管耦合引起的每单位体积的驱动力的减小来解释。而且,实验表明,由于流体的流动由于存在不可移动的不可还原和残余饱和而在大小上减小了,因此毛细管耦合参数应该根据减小的孔隙率而不是根据孔隙率来定义。此外,从统计学上显示逆流相对磁导率曲线与并流相对磁导率曲线成比例,比例常数是毛细管耦合参数。最后,建议可以通过使用一种用于预测毛细管耦合参数大小的方程来消除实验确定逆流相对渗透率曲线的需要。

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