首页> 外文会议>SPE EOR Conference at Oil and Gas West Asia >Controlling Interactions of Colloidal Particles and Porous Media During Low Salinity Water Flooding and Alkaline Flooding By MgO Nanoparticles
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Controlling Interactions of Colloidal Particles and Porous Media During Low Salinity Water Flooding and Alkaline Flooding By MgO Nanoparticles

机译:用MgO纳米粒子控制低盐水浇灌和碱性浇灌期间胶体粒子和多孔介质的相互作用

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Enhanced oil recovery has become a hot topic nowadays. Low-salinity water (LSW) and alkaline flooding are known as two efficient improved oil-recovery techniques to unlock residual oil. An enhanced oil recovery (EOR) project's success will be endangered when the production target is not achieved due to migration of fines, which affects reservoir permeability near the wellbore and leads to declining productivity. In this work, our experimental study aims to use nanoparticles (NPs) for the treatment of colloidal particles migration to improve the performance of the mentioned EOR methods. In LSW and alkaline flooding methods, one critical step is the precise selection of fluids, which increases the effectiveness on these techniques. Therefore, one should choose the optimum salinity rather than the lower one to enhance the efficiency of a typical LSW project and also the optimum pH for the injected slugs rather than the higher one to improve the efficiency of an alkaline flooding project. These limitations make the design of such flooding projects very difficult and challenging. The purpose of this study is to clarify how solution conditions (pH and ionic strength) act upon surface potentials and charge distributions close to solid surfaces. Also the effects of MgO NPs on the point of zero charge (PZC) and critical salt concentration (CSC) are inspected. Zeta potential and turbidity analyses have been utilized as useful tools to examine the effect of NPs on the interactions of colloidal particles with the medium surface. Our results illustrate that the magnitude of the repulsion forces compared to the attraction between fines particles and pore wall surfaces was considerably diminished when the surface of the glass beads was soaked with MgO NPs. The presence of MgO NPs on the bead surface significantly modifies the PZC, increasing it from 3 to around 9, which in turn justifies the retention of particles in a wide range of alkaline conditions. It was found that the MgO NP-treated medium tends to retain around 97% of the in situ fine particles under very alkaline conditions. A decrease in CSC for all divalent and monovalent salt solutions was also quantitative evidence of a striking improvement effect of these NPs. Therefore, pre-flushing of the medium with a slug of MgO nanofluid prior to alkaline flooding or LSW injection into the reservoir can serve as a promising remedy to counteract the subsequently induced migration of colloidal particles. This technique is of great interest for application in the field, where improved oil recovery is desired; however, fines migration and subsequent formation damage should be avoided. This method minimizes the creation of damage, prevents severe plugging in the near-wellbore area, and improves communication between the wellbore and the virgin formation.
机译:现在增强的石油恢复已成为一个热门话题。低盐度水(LSW)和碱性洪水称为两个有效的改进的油回收技术,以解锁残留的油。当由于罚款迁移而导致生产目标没有实现生产目标时,将危及增强的储存(EOR)项目的成功,这影响了井筒附近的储层渗透性并导致生产力下降。在这项工作中,我们的实验研究旨在使用纳米颗粒(NPS)来治疗胶体颗粒迁移,以改善所述EOR方法的性能。在LSW和碱性洪水方法中,一个关键步骤是精确选择流体,这增加了这些技术的有效性。因此,人们应该选择最佳盐度,而不是下部,以增强典型的LSW项目的效率,以及注入的柱子的最佳pH值而不是提高碱性洪水项目的效率。这些限制使得这种洪水项目的设计非常困难和具有挑战性。本研究的目的是阐明溶液条件(pH和离子强度)如何作用在靠近固体表面的表面电位和电荷分布上。还检查了MgO NP对零电荷(PZC)和临界盐浓度(CSC)的影响。 Zeta电位和浊度分析已被用作有用的工具,以检查NP对胶体颗粒与中表面相互作用的影响。我们的结果表明,与粉末珠子的表面浸泡用MgO NPS的表面,与细粒颗粒和孔隙壁表面之间的吸收力相比的幅度相比的幅度显着降低。珠子表面上的MgO NP的存在显着改变PZC,将其从3到大约9增加,这反过来证明在众多碱性条件下保持颗粒的保留。发现MgO NP处理的培养基倾向于在非常碱性条件下保持约97%的原位细颗粒。所有二价和一价盐溶液的CSC降低也是对这些NPS引人注目的改善效果的定量证据。因此,在碱性洪水或LSW注入储存器之前,用MgO纳米流体的介质对介质的预冲洗可以用作抵消随后诱导胶体颗粒的迁移的有前途的补救措施。这种技术对于该领域的应用非常令人兴趣,其中需要改善的储油;但是,应避免罚款迁移和随后的形成损坏。该方法最大限度地减少了损坏的创建,防止了近井筒区域的严重堵塞,并提高了井筒与原始地层之间的沟通。

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