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首页> 外文期刊>Journal of Petroleum Science & Engineering >Phenomenological study of the micro- and macroscopic mechanisms during polymer flooding with SiO2 nanoparticles
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Phenomenological study of the micro- and macroscopic mechanisms during polymer flooding with SiO2 nanoparticles

机译:用SiO2纳米颗粒在聚合物驱化过程中微观和宏观机制的现象学研究

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The incorporation of SiO2 nanoparticles in polymer solutions for oil recovery has generated considerable interest in recent research. Although this approach improves the polymer performance, little evidence is available about the recovery mechanisms that intervene in the polymeric nanofluid suspension or polymer nanofluid. Therefore, the purpose of this study is to describe the microscopic and macroscopic mechanisms involved during oil recovery with polymeric nanofluid flooding. Changes in the rheology and capillary forces (contact angle and interfacial tension) in the polymeric solution due to the incorporation of SiO2 nanoparticles were evaluated. Coreflooding tests were made to evaluate the retention, apparent viscosity, and impact on the relative permeability. Finally, macroscopic oil recovery was measured by displacement tests in a quarter 5-spot system, and microscopic displacement was evaluated by a microfluidic test. Results indicated that the conservation of a favorable mobility ratio in polymeric nanofluids along the porous medium is the phenomenon that most impacts macroscopic oil recovery. This behavior was associated with a reduction in loss retention and the conservation of the apparent viscosity in the porous medium. A direct relationship was observed between the concentration of SiO2 nanoparticles and the viscoelastic behavior of the polymer and the water-wet condition on the surface exposed to the nanofluid. Moreover, residual oil distribution in microscopic displacement revealed that the reduction in residual oil mainly originated from the decrease in the size of the oil clusters. Consequently, the evidence suggests that microscopic oil displacement in polymeric nanofluid is attributed to the reduction in the capillary forces and increases in the viscoelastic nature of the polymer. Results in this work indicated that the additional oil recovery obtained by polymeric nanofluid flooding is generated by the improvement of macroscopic recovery mechanisms and the activation of microscopic mechanisms.
机译:在聚合物溶液中加入SiO2纳米颗粒用于石油开采在最近的研究中引起了相当大的兴趣。尽管这种方法提高了聚合物的性能,但几乎没有证据表明聚合物纳米流体悬浮液或聚合物纳米流体中存在的回收机制。因此,本研究的目的是描述聚合物纳米流体驱油过程中涉及的微观和宏观机理。评估了由于加入SiO2纳米颗粒,聚合物溶液中流变性和毛细管力(接触角和界面张力)的变化。进行了岩心驱油试验,以评估保留率、表观粘度以及对相对渗透率的影响。最后,通过四分之一5点系统的驱油试验测量宏观采收率,并通过微流控试验评估微观驱油效果。结果表明,聚合物纳米流体沿多孔介质的良好流动率守恒是影响宏观采油的最主要现象。这种行为与多孔介质中的损失保留率降低和表观粘度守恒有关。观察到SiO2纳米颗粒的浓度与聚合物的粘弹性行为以及暴露于纳米流体表面的水湿条件之间存在直接关系。微观驱替中的剩余油分布表明,剩余油的减少主要源于油团尺寸的减小。因此,证据表明,聚合物纳米流体中的微观驱油归因于毛细管力的减少和聚合物粘弹性的增加。研究结果表明,聚合物纳米流体驱油所获得的额外采收率是通过改善宏观采收机制和激活微观机理而产生的。

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