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Performance improvement of ionic surfactant flooding in carbonate rock samples by use of nanoparticles

机译:利用纳米颗粒改善碳酸盐岩样品中离子型表面活性剂驱油性能

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Various surfactants have been used in upstream petroleum processes like chemical flooding. Ultimately, the performance of these surfactants depends on their ability to reduce the interfacial tension between oil and water. The surfactant concentration in the aqueous solution decreases owing to the loss of the surfactant on the rock surface in the injection process. The main objective of this paper is to inhibit the surfactant loss by means of adding nanoparticles. Sodium dodecyl sulfate and silica nanoparticles were used as ionic surfactant and nanoparticles in our experiments, respectively. AEROSIL~(?) 816 and AEROSIL~(?) 200 are hydrophobic and hydrophilic nanoparticles. To determine the adsorption loss of the surfactant onto rock samples, a conductivity approach was used. Real carbonate rock samples were used as the solid phase in adsorption experiments. It should be noted that the rock samples were water wet. This paper describes how equilibrium adsorption was investigated by examining adsorption behavior in a system of carbonate sample (solid phase) and surfactant solution (aqueous phase). The initial surfactant and nanoparticle concentrations were 500–5000 and 500–2000?ppm, respectively. The rate of surfactant losses was extremely dependent on the concentration of the surfactant in the system, and the adsorption of the surfactant decreased with an increase in the nanoparticle concentration. Also, the hydrophilic nanoparticles are more effective than the hydrophobic nanoparticles.
机译:各种表面活性剂已用于上游石油工艺(如化学驱油)中。最终,这些表面活性剂的性能取决于它们降低油与水之间的界面张力的能力。由于在注入过程中岩石表面活性剂的损失,水溶液中表面活性剂的浓度降低。本文的主要目的是通过添加纳米颗粒来抑制表面活性剂的损失。在我们的实验中,分别使用十二烷基硫酸钠和二氧化硅纳米粒子作为离子表面活性剂和纳米粒子。 AEROSIL(α)816和AEROSIL(α)200是疏水和亲水的纳米颗粒。为了确定表面活性剂在岩石样品上的吸附损失,使用了电导率方法。实际碳酸盐岩样品被用作吸附实验中的固相。应该注意的是,岩石样品是水润湿的。本文介绍了如何通过检查碳酸盐样品(固相)和表面活性剂溶液(水相)体系中的吸附行为来研究平衡吸附。表面活性剂和纳米颗粒的初始浓度分别为500-5000和500-2000?ppm。表面活性剂的损失速率极大地取决于体系中表面活性剂的浓度,并且表面活性剂的吸附随着纳米颗粒浓度的增加而降低。而且,亲水性纳米颗粒比疏水性纳米颗粒更有效。

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