Hu Yi, Vlahovska Petia M, Miksis Michael J
Engineering Sciences and Applied Mathematics, Northwestern University, Evanston, IL 60208, USA.
Math Biosci Eng. 2021 Mar 9;18(3):2357-2371. doi: 10.3934/mbe.2021119.
A mathematical model to simulate the dynamics of colloidal particles on a drop interface in an applied electric field is presented. The model accounts for the electric field driven flow within the drop and suspending fluid, particle-particle electrostatic interaction, and the particle motion and rotation due to the induced flow and the applied electric field. The model predicts the formation of chains in the case of conducting particles or an undulating band around the equator in the case of dielectric particles. The model results are in agreement with recent experimental work. A study is presented on the impact of particle concentration and electric field strength on the collective motions of the particles. In the case of non-conducting particles, we find that in the presence of Quincke rotation, the amplitude of the undulations of the observed equatorial particle belt increases with particle concentration but decreases with electric field strength. We also show that the wavelength of the undulations appears independent of the applied field strength.
提出了一个数学模型,用于模拟外加电场中液滴界面上胶体颗粒的动力学。该模型考虑了液滴和悬浮液内电场驱动的流动、颗粒间的静电相互作用以及由感应流和外加电场引起的颗粒运动和旋转。该模型预测,对于导电颗粒会形成链,而对于介电颗粒则会在赤道周围形成起伏带。模型结果与最近的实验工作一致。研究了颗粒浓度和电场强度对颗粒集体运动的影响。对于非导电颗粒,我们发现在存在昆克旋转的情况下,观察到的赤道颗粒带起伏的幅度随颗粒浓度增加而增大,但随电场强度减小。我们还表明,起伏的波长似乎与外加场强无关。