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Application of CFD to evaluate the pore morphology effect on nanofluid flooding for enhanced oil recovery

机译:CFD在纳米流体洪水中施用孔形态效应加强溢油的应用

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In this study a computational fluid dynamics (CFD) method has been developed to simulate the effect of pore morphology and its distribution in a 2D micromodel on the enhanced oil recovery factor of nanofluid flooding. Seven types of micromodel with different schematics and pore shapes were considered. SiO2 nanoparticles, dispersed in distilled water, were used for the preparation of the nanofluid and flooding operation. To generate the desirable porous media, the geometries of the micromodels were generated using the commercial grid generation tool, Gambit 2.3. Then, the momentum and mass transport equations were solved based on the finite volume method using the Fluent 6.3 software to investigate the displacement of oil at the pore scale. In order to better understand the nanoparticles' effects and to confirm the validity of the CFD simulations, numerical results have been compared with the experimental data. The influences of some parameters such as heterogeneity of pores, connectivity of pores with or without throat line, tortuosity and pore shape on the enhanced oil recovery, breakthrough time and fluid trapping in the porous media were investigated. From the results, it has been found that random generation of pore distribution illustrates better results compared to homogeneous pore distribution. In addition, with the presence of nanoparticles in the injected fluid the number of fingers decreases. The fingering effect has the main effect on the oil recovery factor with a lower fingering effect having a higher recovery factor. So, in the homogeneous pattern the nanofluid flow in the porous media is uniform and symmetric. But in the random distribution model, the fluid flow is more realistic and similar to the fluid flow in reservoirs.
机译:在该研究中,已经开发了一种计算流体动力学(CFD)方法以模拟孔形态的影响及其在纳米流体洪水增强的溢油因子上的2D微映射中的影响。考虑了具有不同示意性和孔隙形状的七种类型的微模型。分散在蒸馏水中的SiO2纳米颗粒用于制备纳米流体和泛滥操作。为了产生所需的多孔介质,使用商业网格生成工具,Gambit 2.3产生微模尺的几何形状。然后,基于使用流畅的6.3软件的有限体积法解决了动量和质量传输方程,以研究油在孔隙秤上的位移。为了更好地理解纳米颗粒的效果并确认CFD模拟的有效性,与实验数据进行了比较了数值结果。研究了一些参数的影响,例如孔的异质性,具有或没有喉部线的孔的连接性,曲折和孔隙形状的增强的采油,突破时间和流体捕获在多孔介质中。从结果中,已经发现随机产生的孔分布显示与均匀孔分布相比的更好的结果。另外,通过在注入的流体中存在纳米颗粒,手指的数量降低。起义效应具有对具有更高恢复因子的较低指法效应的射击效应的主要影响。因此,在均匀的图案中,多孔介质中的纳米流体流动是均匀和对称的。但在随机分布模型中,流体流动更加真实,与储存器中的流体流相似。

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