Wang Yong, Le Xinpeng, Wang Xingwang, Liu Wenbo, Wang Zhihua
Key Laboratory for Enhanced Oil & Gas Recovery of the Ministry of Education, Northeast Petroleum University, Daqing 163318, China.
College of Information Engineering, Shandong Vocational and Technical University of International Studies, Rizhao 276800, China.
Polymers (Basel). 2023 Jan 23;15(3):584. doi: 10.3390/polym15030584.
The stable maintenance effect of a chemical oil displacement agent on a foam liquid film usually creates problems with the oilfields surface system. To achieve comprehensive insights into the influence mechanism of these chemical agent components on the foam liquid film, an "SDBS/HPAM/OH" water-based foam simulation system and corresponding control systems were constructed by adjusting the categories and quantities of component molecules by molecular dynamics (MD) simulation. The simulated results indicated that the foam stability follows the order of "SDBS/HPAM/OH" system > "SDBS/HPAM" system > "SDBS" system. The smaller the inclination angle of the SDBS molecular tail chain, the greater the tendency of the SDBS molecular configuration to be "upright" at the gas-liquid interface, which is not conducive to preventing the aggregation and penetration of gas molecules at the gas-liquid interface. Although the presence of HPAM molecules can significantly enhance the stability of the liquid film by restricting the liquid film's drainage and the diffusion of gas molecules, the addition of HPAM molecules would weaken the formation ability of the foam liquid film. Through decreasing the aggregation of cations around the co-adsorption layer, OH not only enhances the interfacial activity of SDBS molecules, but also reduces the electrostatic repulsion between -COO groups on the HPAM molecular chain, which makes the foam more stable. With an increase in the pH, SDBS concentration, and HPAM concentration, the stability of foam liquid film was strengthened. These results are helpful in facilitating new insights into the formation and stabilization mechanism of water-based foams. In particular, they provide support for the development and application of new defoaming technologies.
化学驱油剂对泡沫液膜的稳定维持作用通常会给油田地面系统带来问题。为全面深入了解这些化学剂组分对泡沫液膜的影响机制,通过分子动力学(MD)模拟调整组分分子的种类和数量,构建了“SDBS/HPAM/OH”水基泡沫模拟系统及相应的对照系统。模拟结果表明,泡沫稳定性遵循“SDBS/HPAM/OH”体系>“SDBS/HPAM”体系>“SDBS”体系的顺序。SDBS分子尾链的倾斜角度越小,SDBS分子在气液界面呈“直立”构型的趋势越大,这不利于阻止气体分子在气液界面的聚集和渗透。尽管HPAM分子的存在可通过限制液膜排水和气体分子扩散显著提高液膜稳定性,但添加HPAM分子会削弱泡沫液膜的形成能力。通过降低共吸附层周围阳离子的聚集,OH不仅增强了SDBS分子的界面活性,还降低了HPAM分子链上-COO基团之间的静电排斥力,从而使泡沫更稳定。随着pH值、SDBS浓度和HPAM浓度的增加,泡沫液膜的稳定性增强。这些结果有助于促进对水基泡沫形成和稳定机制的新认识。特别是,它们为新型消泡技术的开发和应用提供了支持。