School of Energy and Power Engineering, Northeast Electric Power University, Jilin 132012, China.
Molecules. 2023 Mar 29;28(7):3064. doi: 10.3390/molecules28073064.
Water must be separated from water-in-oil (W/O) emulsion because of the corrosion it brings to the relative equipment in the process of transportation and storage. It is an effective method to apply external electric field to achieve high performance of separating small, dispersed water droplets from W/O emulsion; however, the coalescing micromechanism of such small salty droplets under AC electric field is unclear. In this paper, molecular dynamics simulation was adopted to investigate the coalescence and separation process of two NaCl-aqueous droplets under AC electric field and discuss the effect of AC electric field frequency, as well as the time required for contacting, the critical electric field strength, the dynamic coalescence process and the stability of the final merged droplet. The results show that the critical electric field strength of the droplet coalescence increases with the increase of frequency, while the time required for droplet contacting becomes shorter. The shrinkage function curve was applied to characterize the droplet coalescence effect and it was found that the droplets coalescence and form a nearly spherical droplet under the AC electric field with a frequency of 1.25 GHz and strength of 0.5 V/nm. When the electric field frequency is 10 GHZ, the merged droplet presents a periodic fluctuation with the same period as the AC electric field, which mainly depends on the periodic movement of cations and anions under the AC electric field. The results can provide theoretical basis for the practical application of electrostatic demulsification technology in the petroleum or chemical industry from the microscopic perspective.
由于水在运输和储存过程中会对相关设备造成腐蚀,因此必须将其与油包水乳状液(W/O)分离。在外加电场作用下实现从 W/O 乳状液中高效分离小而分散的水滴是一种有效的方法;然而,在交流电场下,这种小含盐液滴的聚结微观机理尚不清楚。本文采用分子动力学模拟研究了 AC 电场下两个 NaCl 水相液滴的聚结和分离过程,并探讨了交流电场频率、接触时间、临界电场强度、动态聚结过程以及最终合并液滴的稳定性对聚结的影响。结果表明,液滴聚结的临界电场强度随频率的增加而增大,而液滴接触所需的时间变短。采用收缩函数曲线来表征液滴聚结效果,发现在频率为 1.25GHz、强度为 0.5V/nm 的交流电场下,液滴聚结并形成近球形液滴。当电场频率为 10GHz 时,合并后的液滴呈现出与交流电场相同周期的周期性波动,这主要取决于交流电场下阳离子和阴离子的周期性运动。该结果从微观角度为静电破乳技术在石油或化工行业的实际应用提供了理论依据。