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Experimental study on two-phase flow in rough fracture: Phase diagram and localized flow nel

机译:粗糙裂缝中两相流的实验研究:相图和局部流纳

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Two-phase flow in fractured media plays an important role in various subsurface processes, including enhanced oil recovery and geological carbon sequestration. The fluid–fluid immiscible displacement patterns range from viscous to capillary fingering to compact displacement owing to the competition between capillary and viscous forces. Although has been profoundly studied for porous media, the phase diagram of displacement patterns as well as the displacement efficiency was rarely reported for rough fractures. Here we studied immiscible displacements in a horizontal transparent rough fracture under a wide range of capillary numberCaand viscosity ratioM. We performed drainage experiments of water-glycerol mixture displacing silicone oil to visualize the displacement processes under favorable conditions (1 ≤ log10M ≤ 3). Based on qualitative and quantitative analyses of the dynamic invasion morphologies, we for the first time proposed a full phase diagram for rough fracture, showing the domains of pattern formations (viscous fingering, capillary fingering and compact displacement) and the corresponding displacement efficiency as a function ofCaandM. The phase diagram indicates that the displacement efficiency decreases with the increase ofCain the domain of compact-displacement. We can show that this efficiency reduction is attributed to the onset of localized flow channel induced by the spatial variability of fracture aperture. In this zone, the front is stable at initial stage until approaching a critical location, after which a finger is initiated and advances toward the outlet along the center of the fracture void space with much higher velocity, demonstrating the important role of the heterogeneity of fracture geometry in the displacement processes. This study not only extends the phase diagram from porous media to rough fractures but also improves our understanding of the dynamics of displacement processes jointly governed by the viscous/capillary forces and the fracture geometry under favorable conditions.
机译:裂隙介质中的两相流在各种地下过程中起着重要作用,包括提高采油率和地质固碳。由于毛细管力和粘性力之间的竞争,流体-流体不混溶的位移模式范围从粘性到毛细管指状再到紧凑位移。尽管已经对多孔介质进行了深入研究,但很少报道粗糙裂缝的位移模式和位移效率的相图。在这里,我们研究了在宽毛细管数Ca和粘度比M的较大范围内水平透明粗糙裂缝中的不混溶位移。我们进行了水-甘油混合物置换硅油的排水实验,以可视化在有利条件下(1≤log10M≤3)的置换过程。在对动态侵入形态进行定性和定量分析的基础上,我们首次提出了粗糙断裂的完整相图,显示了花样形成的区域(粘性指法,毛细管指法和紧密位移)以及相应的位移效率ofCaandM。相图表明,在致密位移范围内,位移效率随着Ca Ca的增加而降低。我们可以证明,这种效率降低归因于裂隙孔径的空间变异性引起的局部流动通道的出现。在该区域中,前缘在开始阶段一直保持稳定,直到接近关键位置为止,此后手指开始伸出,并沿着裂缝空隙空间的中心以更高的速度向出口前进,这表明了裂缝非均质性的重要作用位移过程中的几何形状。这项研究不仅将相图从多孔介质扩展到粗糙裂缝,而且使我们对在有利条件下由粘滞/毛细管力和裂缝几何形状共同控制的位移过程动力学有了更好的了解。

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