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3D Visualization to Study the Effect of Wettability Alteration on Fluid Distribution at the Pore

机译:3D可视化研究润湿性变化对孔隙中流体分布的影响

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Fluid mobility in porous media is highly affected by the fluid distribution and fluid wettability condition inside thepore space. Fluid wetting the rock tends to have a lower mobility compared to the non-wetting fluid. In petroleumengineering applications, changes in the wetting characteristics of the rock-fluid system can have a significant effecton well productivity. One example is condensate blocking, where the liquid condensate accumulates in highsaturation near the wellbore due to the strong liquid-wetting, resulting in reduced gas mobility. Previous studieshave shown that altering the wettability towards a gas-wetting state can enhance liquid mobility and reduce theaccumulation in the near-wellbore region.Changes in the rock Wettability are usually studied either through contact angle measurements at the core scale, orthrough studies on the changes in fluid mobility characteristics. However, some researchers have been skeptical asto whether a state of gas-wetting can be achieved at the pore scale. In this work, we conducted an experimentalstudy where we altered carbonate rock wettability from liquid-wetting to gas-wetting. This was achieved using afluorinated polymer treatment. A new experimental setup was used combining a high resolution computed microtomography(MCT), to acquire 3D images of the rock-fluid system at pore scale. Pore spaces in the order of 50 to200 micrometer were scanned at a resolution of 2 micron in order to visualize the liquid-air interface.The results show that the polymer treatment changed the distribution of liquid and gas inside the pore space. Liquidappears to be wetting the rock surface when the rock is in its original conditions.The studies in this area are important to improve the productivity of gas condensate reservoirs where liquidaccumulates, decreasing the production of the well. It is evident from our work that achieving a state of gas-wettingat the pore scale is possible. 3D visualization is a very important tool to help us quantify the success of the polymertreatment and the uniformity of the surface coating. In order to conduct a similar study at higher temperature andpressure conditions, a visual cell is under design and will be discussed in future work
机译:多孔介质中的流体流动性受到内部流体分布和流体润湿性条件的高度影响。 孔隙空间。与非润湿流体相比,润湿岩石的流体往往具有较低的迁移率。在石油中 在工程应用中,岩石-流体系统的润湿特性的变化可能会产生重大影响 提高生产率。一个示例是凝结水阻塞,其中液体凝结水积聚得很高。 由于强烈的液体润湿作用,井筒附近的饱和度降低,从而导致气体流动性降低。之前的学习 已经表明将润湿性改变为气体润湿状态可以增强液体流动性并降低 井筒附近的油气成藏。 通常通过岩心尺度上的接触角测量研究岩石润湿性的变化,或者 通过研究流体流动特性的变化。但是,一些研究人员对此表示怀疑。 能否在孔尺度上达到气体润湿状态。在这项工作中,我们进行了一项实验 研究了我们将碳酸盐岩的润湿性从液体润湿改变为气体润湿的地方。这是通过使用 氟化聚合物处理。使用了新的实验装置,并结合了高分辨率计算机断层扫描 (MCT),以孔尺度获取岩石-流体系统的3D图像。毛孔空间约为50至 为了使液-气界面可视化,以2微米的分辨率扫描了200微米。 结果表明,聚合物处理改变了孔隙空间内液体和气体的分布。液体 当岩石处于其原始状态时,它似乎正在润湿岩石表面。 该领域的研究对于提高液态气体凝析气藏的生产率非常重要。 积累,降低了井的产量。从我们的工作中可以明显看出,达到了湿润状态 在孔径上是可能的。 3D可视化是非常重要的工具,可帮助我们量化聚合物的成功率 处理和表面涂层的均匀性。为了在更高的温度下进行类似的研究, 压力条件下,视觉单元正在设计中,将在以后的工作中进行讨论

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