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A Novel Supercritical CO2 Foam System Stabilized With a Mixture of Zwitterionic Surfactant and Silica Nanoparticles for Enhanced Oil Recovery

机译:用两性离子表面活性剂和二氧化硅纳米颗粒的混合物稳定的新型超临界CO2泡沫系统,可提高采油率

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In order to improve the CO2 foam stability at high temperature and salinity, hydrophilic silica nanoparticles (NPs) were added into a dilute zwitterionic surfactant solution to stabilize supercritical CO2 (SC-CO2) foam. In the present paper, the foaming capacity and stability of SC-CO2 foam were investigated as a function of NP concentration at elevated temperatures and pressures. It was observed that the drainage rate of SC-CO2 foam was initially fast and then became slower with NPs adsorption at the gas-liquid interface. The improved foam stability at high temperature was attributed to the enhanced disjoining pressure with addition of NPs. Furthermore, an obvious increase in the foam stability was noticed with the increasing salinity due to the screening of NP charges at the interface. The rheological characteristics including apparent viscosity and surface elasticity, resistance factor, and microstructures of SC-CO2 foam were also analyzed at high temperature and pressure. With addition of 0.7% NPs, SC-CO2 foam was stabilized with apparent viscosity increased up to 80 mPa?s and resistance factor up to 200. Based on the stochastic bubble population (SBP) model, the resistance factor of SC-CO2 foam was simulated by considering the foam generation rate and maximum bubble density. The microstructural characteristics of SC-CO2 foam were detected by optical microscopy. It was found that the effluent bubble size ranged between 20 and 30 μm and the coalescence rate of SC-CO2 foam became slow with the increasing NP concentration. Oscillation measurements revealed that the NPs enhanced surface elasticity between CO2 and foam agents for resisting external disturbances, thus resulting in enhanced film stability and excellent rheological properties.
机译:为了提高高温和高盐度下CO2泡沫的稳定性,将亲水性二氧化硅纳米颗粒(NPs)添加到稀的两性离子表面活性剂溶液中,以稳定超临界CO2(SC-CO2)泡沫。在本文中,研究了SC-CO2泡沫的发泡能力和稳定性与在高温和高压下NP浓度的关系。观察到,SC-CO2泡沫的排泄速率最初是很快的,然后随着气液界面上NPs的吸附而变慢。高温下泡沫稳定性的提高归因于添加NP时解体压力的增加。此外,由于在界面处对NP电荷的筛选,随着盐度的增加,注意到泡沫稳定性的明显增加。在高温和高压下,还分析了SC-CO2泡沫的流变特性,包括表观粘度和表面弹性,阻力系数和微观结构。加入0.7%NPs后,SC-CO2泡沫的表观粘度增加到80 mPa?s,阻力系数达到200。通过考虑泡沫产生速率和最大气泡密度进行模拟。通过光学显微镜检测SC-CO2泡沫的微观结构特征。结果表明,出水气泡尺寸在20至30μm之间,随着NP浓度的增加,SC-CO2泡沫的聚结速度变慢。振动测量表明,NPs增强了CO2和发泡剂之间的表面弹性,可抵抗外部干扰,从而增强了膜的稳定性和出色的流变性。

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