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A comprehensive review on interaction of nanoparticles with low salinity water and surfactant for enhanced oil recovery in sandstone and carbonate reservoirs

机译:纳米颗粒与低盐度水和表面活性剂相互作用增强砂岩和碳酸盐岩油藏采收率的综述

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摘要

Nanoparticles (NPs) are currently gaining wide acceptance in the field of petroleum engineering. They are applied in different areas of petroleum exploration and production such as drilling, well logging, reservoir management, and enhanced oil recovery (EOR). Due to the size of NPs, they have special physical and chemical properties. Therefore, NPs can influence the properties of the fluid system, including viscosity, magnetism, and interfacial tension (IFT).The injection of NPs into the reservoirs for EOR is more effective than water injection but not as effective as chemical flooding. Consequently, NPs are injected along with low salinity water (LSW) or chemicals such as surfactant in order to improve the recovery of oil. NPs are used to prevent the fines migration during LSW injection, control the mobility of formation water, and reduce the surfactant adsorption on the pore walls of the reservoir.The improvement in oil recovery, when NPs are injected in combination with LSW or chemicals in the reservoir, can be attributed to the variations in the properties of the fluid system and the rock-fluid interactions. This study comprehensively reviews the mechanisms behind these variations. LSW injection improves the oil recovery by altering the rock wettability from oil-wet to water-wet. However, this study reveals that the dispersion of NPs in LSW does not necessarily change the rock wettability towards water-wet. The wettability of the system may shift towards oil-wet instead of water-wet depending on the concentration of NPs. Improvement in oil recovery depends on the effective surface charge and the volume fraction of dispersed NPs in the solution. Aggregation of NPs in solution should be avoided because it lowers the recovery by plugging the pore throats. The stability of NPs dispersed in solution with increasing concentrations of salt and surfactant is reviewed and the resulting effect on the IFT of the solution is analyzed. NPs dispersed in different types of surfactant show different behaviors of IFT. The behavior of the IFT depends on the concentration of surfactant, the amount of dispersed NPs (concentration), the type of surfactant (anionic, cationic, and non-ionic), and the effective charge of NPs (positive, negative, and neutral). The combination of LSW with surfactant for oil recovery has two opposing impacts. The IFT reduces while the contact angle increases with an increase in salinity.The mechanisms responsible for the variations in the properties of the system when the combination of LSW, surfactant, and NPs are used for oil recovery are reviewed in this study. Understanding the mechanisms behind the interactions at the fluid-fluid and the fluid-solid interfaces will aid in designing an effective fluid system that combines LSW, surfactant, and NPs for successful implementation of EOR in sandstone and carbonate reservoirs.
机译:纳米颗粒(NPs)目前在石油工程领域得到广泛认可。它们被应用于石油勘探和生产的不同领域,例如钻井,测井,储层管理和提高采油率(EOR)。由于NP的大小,它们具有特殊的物理和化学性质。因此,NPs会影响流体系统的特性,包括粘度,磁性和界面张力(IFT)。将NPs注入储层进行EOR的效果要比注水更有效,但效果不如化学驱。因此,NP与低盐度水(LSW)或化学物质(如表面活性剂)一起注入,以提高油的采收率。 NPs可以防止LSW注入过程中的细粒迁移,控制地层水的流动性,并减少表面活性​​剂在储层孔壁上的吸附.NPs与LSW或化学药品一起注入时可以提高采油率。储集层可以归因于流体系统特性的变化和岩液相互作用。这项研究全面审查了这些变化背后的机制。 LSW注入通过将岩石的润湿性从油湿性改变为水湿性来改善油的采收率。但是,这项研究表明,NPs在LSW中的分散并不一定会改变岩石对水的润湿性。根据NP的浓度,系统的可湿性可能会向油湿而不是水湿转移。采油率的提高取决于有效的表面电荷和溶液中分散的NP的体积分数。应避免溶液中NP的聚集,因为它会堵塞孔喉,从而降低回收率。审查了随着盐和表面活性剂浓度的增加而分散在溶液中的NPs的稳定性,并分析了其对溶液IFT的影响。分散在不同类型表面活性剂中的NP表现出不同的IFT行为。 IFT的行为取决于表面活性剂的浓度,分散的NP的数量(浓度),表面活性剂的类型(阴离子,阳离子和非离子)以及NP的有效电荷(正,负和中性) 。 LSW与表面活性剂的组合用于采油有两个相反的影响。当盐度增加时,IFT减小,而接触角增加,盐度增加。本文研究了将LSW,表面活性剂和NPs组合用于采油时造成系统性能变化的机理。了解流体-流体和流体-固体界面相互作用的机理,将有助于设计一个有效的流体系统,该系统将LSW,表面活性剂和NPs结合起来,以在砂岩和碳酸盐岩储层中成功实施EOR。

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