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An experimental investigation of the enhanced oil recovery and improved performance of drilling fluids using titanium dioxide and fumed silica nanoparticles

机译:使用二氧化钛和气相二氧化硅纳米颗粒提高采收率并改善钻井液性能的实验研究

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Nanotechnology has contributed to the technological advances in various industrial biomaterials and renewable energy production over the last decade. Recently, a renewed interest arises in the application of nanotechnology for the upstream petroleum industry such as exploration, drilling and production. In particular, the adding of nanoparticles to injection fluids may drastically benefit enhanced oil recovery, such as changing the properties of the fluid, wettability alternation of rocks, advanced drag reduction, strengthening sand consolidation, reducing the interfacial tension and increasing the mobility of the capillary-trapped oil. The feasibility of these methods depends on many factors such as flow mechanisms in porous media and porous medium properties at microscopic and macroscopic scales. Previous studies have indicated that the oil recovery from porous media may be substantially increased by the injection of miscible fluids. This all sounds great and waterflooding has been used successfully for decades; however, it is important to carefully design and appropriately operate the waterflood. Using nanoparticles in all samples has resulted in recovery increase. Among these applications of the study is nanoenhanced oil recovery which can be applied in many water-wet reservoirs dominated by inhibition mechanism to extract more fluid through really small caliber pores. In these experiments, two nanoparticles dissolved in water are injected into simulated environment, and also, the effect of these nanoparticles in water-base drilling typical fluid have been investigated. Using nanoparticles in all samples has resulted in recovery increase. Finally, considering the experiments, it is demonstrated that flows with nanoparticles and, in particular, titanium dioxide (TiO2) nanoparticles have the highest amount of recovery factors and thus using nanoparticles in waterflooding projects and even some in polymer flooding ones. Also, results of the other tests, regarding each typical drilling costs of each foot and importance of time in the operation, it is possible to replace technically and economically the ordinary addition (here, the widely used sodium hydroxide) with fumed silica nanoparticles in drilling fluid to prevent cement contamination of the drilling fluid. The advantages of nano-TiO2 are possessing suitable thermal transition qualities in the drilling fluid.
机译:在过去的十年中,纳米技术为各种工业生物材料和可再生能源生产的技术进步做出了贡献。最近,人们对纳米技术在上游石油工业(例如勘探,钻探和生产)中的应用产生了新的兴趣。特别是,将纳米颗粒添加到注入液中可能会大大提高采油率,例如改变流体的性质,改变岩石的可湿性,降低阻力,增强砂固结,降低界面张力并增加毛细管的流动性。被困的油。这些方法的可行性取决于许多因素,例如多孔介质中的流动机理以及微观和宏观尺度上的多孔介质特性。先前的研究表明,通过注入可混溶的流体可以大大提高从多孔介质中采油的能力。这一切听起来很棒,注水已经成功使用了数十年。但是,仔细设计和适当操作注水非常重要。在所有样品中使用纳米颗粒可提高回收率。在这项研究的这些应用中,有纳米级采油技术,该技术可用于许多以抑制机制为主的水湿油藏中,从而通过非常小的口径孔提取更多的流体。在这些实验中,将两种溶解在水中的纳米粒子注入到模拟环境中,并且,还研究了这些纳米粒子在水基钻井液中的作用。在所有样品中使用纳米颗粒可提高回收率。最后,考虑到实验,证明了与纳米颗粒,特别是二氧化钛(TiO2)纳米颗粒的流动具有最高的采收率,因此在注水项目中甚至在聚合物驱替项目中使用了纳米粒子。同样,根据其他测试的结果,关于每只脚的每只典型钻探成本和操作时间的重要性,可以在钻探时在技术上和经济上用气相二氧化硅纳米颗粒代替普通添加物(此处为广泛使用的氢氧化钠)防止水泥对钻井液的污染。纳米二氧化钛的优点是在钻井液中具有合适的热转变质量。

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