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Polymer Injectivity: Influence of Permeability in the Flow of EOR Polymers in Porous Media

机译:聚合物注入:渗透性在多孔介质中EOR聚合物流动的影响

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Application of polymer flooding as a chemical Enhanced Oil Recovery (EOR) has increased over recent years.The main type of polymer used is partially hydrolyzed polyacrylamide (HPAM).This polymer still has some challenges especially with shear stability and injectivity that restrict its utility,particularly for low permeability reservoirs.Injectivity limits the possible gain by acceleration in oil production due to polymer flooding.Hence,good polymer injectivity is a requirement for the success of the operation.This paper aims to investigate the influence of formation permeability on polymer flow in porous media.In this study,a combination of core flooding with rheological studies is presented to evaluate the influence of permeability on polymer in-situ rheology behavior.The in-situ flow of HPAM polymers has also been studied for different molecular weights.The effect of polymer preconditioning prior to injection was studied through exposing polymer solutions to different extent of mechanical degradation.Results from this study reveal that the expected shear thinning behavior of HPAM that is observed in rheometer measurements is not observed in in-situ rheology in porous media.Instead,HPAM in porous media exhibits near-Newtonian behavior at low flow rates representative of velocities deep in the reservoir,while exhibiting shear thickening behavior at high flow rates representative of velocities near wellbore region.The pressure build-up associated with shear thickening behavior during polymer injection is significantly higher than pressure differential during water injection.The extent of shear thickening is high during the injection of high Mw polymer regardless of cores'permeability.In low permeable Berea cores,shear thickening and mechanical degradation occur at lower velocities although the degree of shear thickening is lower in Berea to that observed in high permeable Bentheimer cores.This is ascribed to high polymer retention in Berea cores that results in high residual resistance factor (RRF).Results show that preshearing polymer before injection into porous media optimizes its injectability and transportability through porous media.The effect of preshearing becomes favorable for the injection of high Mw polymers into low permeability formation.This study discusses polymer in-situ rheology and injectivity,which is a key issue in the design of polymer flood projects.The results provide beneficial information on optimizing polymer injectivity,in particular,for low permeability porous media.
机译:聚合物洪水作为化学增强的油回收(EOR)近年来的应用增加。所用聚合物的主要类型是部分水解的聚丙烯酰胺(HPAM)。该聚合物仍然具有一些挑战,特别是剪切稳定性和注射性限制其效用,特别是对于低渗透储存器。注射器限制了由于聚合物泛洪引起的石油产量加速的可能增益。很好,良好的聚合物注射性是对运作成功的要求。本文旨在研究形成渗透性对聚合物流动的影响多孔介质。本研究,提出了具有流变研究的核心泛滥的组合,以评估渗透性对原位流变学行为的影响。HPAM聚合物的原位流动对不同的分子量。效果通过将聚合物溶液暴露于MECH的不同程度上,研究了注射之前的聚合物预处理来自该研究的促进结果表明,在多孔介质中,在原位流变学中观察到在流变仪测量中观察到的HPAM的预期剪切变薄行为。在低流量代表下,多孔介质中的HPAM展示了近牛顿行为储层中深入的速度,同时在井筒区域附近的速度下表现出速度的剪切增厚行为。在聚合物注射期间与剪切增厚行为相关的压力积聚显着高于注水期间的压差。剪切的程度在注射高MW聚合物期间增稠率高,无论核心术,均匀的耳膜核心,剪切增厚和机械降解都会以较低的速度发生,尽管在伯雷氏植物中较低的剪切增稠程度,以高渗透的膨烯管芯观察到的剪切增厚程度。这在Berea核心中归因于高分子保留,从而导致高残留抗性因子(RRF)。结果表明,注射到多孔介质前的预析聚合物通过多孔介质优化其可注射性和可燃性。预收的效果有利于将高MW聚合物注入低渗透性形成。本研究讨论了 - 原位流变学和注射性,这是聚合物洪水项目设计的关键问题。结果提供了有关优化聚合物注射性的有益信息,特别是对于低渗透性多孔介质。

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