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直流电场作用下SDS表面活性剂破乳油包水乳液机理的分子动力学研究

Molecular Dynamics Study on the Demulsification Mechanism of Water-In-Oil Emulsion with SDS Surfactant under a DC Electric Field.

作者信息

Li Shiyan, Yuan Shundong, Zhang Yuanwu, Guo Huiying, Liu Sai, Wang Diansheng, Wang Yudou

机构信息

College of Science, China University of Petroleum, Qingdao266580, China.

Research Institute of Experiment and Detection, Xinjiang Oilfield Company, PetroChina, Karamay834000, China.

出版信息

Langmuir. 2022 Oct 18;38(41):12717-12730. doi: 10.1021/acs.langmuir.2c02364. Epub 2022 Oct 5.

Abstract

Application of an electric field is an effective demulsification method for water-in-oil (W/O) emulsions. For the W/O emulsions stabilized by anionic surfactants, the microscopic demulsification mechanism is still not very clear. In this work, the coalescence behavior of two droplets stabilized by the anionic surfactant sodium dodecyl sulfate (SDS) in the oil phase under a DC electric field is investigated by molecular dynamics simulation. The effects of electric field strength and oil type on the electrocoalescence of two water droplets are mainly considered. The trajectory snapshots and center of mass of the two water droplets suggest that there is almost no migratory coalescence. The movement of sodium ions and SDS, which is a combined effect of the electric field force and the resistance from the oil phase, is crucial for the deformation and connection of two water droplets. The results of mean square displacement, radial distribution function, hydration number, and interaction energies of Na-HO and SDS-HO indicate that the sodium ion has a stronger ability to carry water molecules for movement than SDS. The stronger electric field strength will result in more severe deformation and shorter coalescence time. Under the higher electric field strength, the two droplets will be elongated into a slender water ribbon. By applying a pulsed DC electric field with suitable amplitude, frequency, and duty ratio, it is possible to achieve full coalescence for the ionic surfactant-stabilized W/O emulsions. The oil phase also plays an important role for the deformation of droplets and the migration of emulsion components. For the different oil phases, a longer time or stronger electric field strength would be needed for the electrocoalescence of droplets in the oil phase with higher density and viscosity. Our results are expected to be helpful for practical application in the petroleum industry and chemical engineering.

摘要

施加电场是一种有效的油包水(W/O)乳液破乳方法。对于由阴离子表面活性剂稳定的W/O乳液,微观破乳机理仍不是很清楚。在这项工作中,通过分子动力学模拟研究了在直流电场作用下,由阴离子表面活性剂十二烷基硫酸钠(SDS)稳定的两个油相液滴的聚并行为。主要考虑了电场强度和油的类型对两个水滴电聚并的影响。两个水滴的轨迹快照和质心表明几乎没有迁移聚并。钠离子和SDS的运动是电场力和油相阻力的综合作用,对两个水滴的变形和连接至关重要。钠离子与水分子、SDS与水分子的均方位移、径向分布函数、水合数以及相互作用能的结果表明,钠离子携带水分子运动的能力比SDS更强。更强的电场强度会导致更严重的变形和更短的聚并时间。在较高的电场强度下,两个液滴会拉长形成细长的水带。通过施加具有合适幅度、频率和占空比的脉冲直流电场,有可能使离子表面活性剂稳定的W/O乳液实现完全聚并。油相对液滴的变形和乳液成分的迁移也起着重要作用。对于不同的油相,密度和粘度较高的油相中液滴的电聚并需要更长的时间或更强的电场强度。我们的结果有望对石油工业和化学工程的实际应用有所帮助。

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