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A visualization study on two-phase gravity drainage in porous media by using magnetic resonance imaging

机译:磁共振成像通过磁共振成像对多孔介质中两相重力引流的可视化研究

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Gravity drainage characteristics are important to improve our understanding of gas-liquid or liquid-liquid two-phase flow in porous media. Stable or unstable displacement fronts that controlled by the capillary force, viscous force, gravitational force, etc., are relevant features of immiscible two-phase flow. In this paper, three dimensionless parameters, namely, the gravity number, the capillary number and the Bond number, were used to describe the effect of the above mentioned forces on two-phase drainage features, including the displacement front and final displacing-phase saturation. A series of experiments on the downward displacement of a viscous fluid by a less viscous fluid in a vertical vessel that is filled with quartz beads are performed by using magnetic resonance imaging (MRI). The experimental results indicate that the wetting properties at both high and low capillary numbers exert remarkable control on the fluid displacement. When the contact angle is lower than 90 degrees, i.e., the displaced phase is the wetting phase, the average velocity V-f of the interface of the two phases (displacement front velocity) is observably lower than when the displaced phase is the non-wetting phase (contact angle higher than 90 degrees). The results show that a fingering phenomenon occurs when the gravity number G is less than the critical gravity number G' = Delta mu/mu(g). Moreover, the higher Bond number results in higher final displacing-phase saturation, whereas the capillary number has an opposite effect. (C) 2016 Elsevier Inc. All rights reserved.
机译:重力引流特性对于改善我们对多孔介质中的气液或液态液体两相流的理解是重要的。由毛细力,粘性力,重力等控制的稳定或不稳定的位移前沿是不混溶的两相流的相关特征。在本文中,使用三个无量纲参数,即重力数,毛细数量和键合数,用于描述上述力对两相引流特征的影响,包括位移前沿和最终位移相饱和度。通过使用磁共振成像(MRI)进行垂直容器中填充用石英珠的垂直容器中粘性流体的粘性流体向下移位的一系列实验。实验结果表明,高毛细管数下的润湿性能对流体位移产生了显着的控制。当接触角低于90度时,即移位相是润湿阶段,两个相的界面(位移前速度)的界面的平均速度VF观察地低于移位相是非润湿阶段(接触角高于90度)。结果表明,当重力数G小于临界重力数G'= Delta mu / mu(g)时,发生指法现象。此外,较高的键合数导致较高的最终移位相饱和度,而毛细数量具有相反的效果。 (c)2016年Elsevier Inc.保留所有权利。

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