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电泳中离子浓度冲击波的电动力学不稳定性。

Electrohydrodynamic instability of ion-concentration shock wave in electrophoresis.

机构信息

Department of Mechanical Engineering, Indian Institute of Technology Delhi, Hauz Khas, New Delhi 110016, India.

出版信息

Phys Rev E. 2017 Jun;95(6-1):063109. doi: 10.1103/PhysRevE.95.063109. Epub 2017 Jun 19.

Abstract

Capillary electrophoresis techniques often involve ion-concentration shock waves in an electrolyte solution, propagating under the effect of an external electric field. These shock waves are characterized by self-sharpening gradients in ion concentrations and electrical conductivity that are collinear with the electric field. The coupling of electric field and fluid motion at the shock interface sometimes leads to an undesirable electrohydrodynamic (EHD) instability. Using linear stability analysis, we describe the motion of small-amplitude disturbances of an electrophoretic shock wave. Our analysis shows that the EHD instability results due to the competition between destabilizing electroviscous flow and stabilizing electromigration of the shock wave. The ratio of timescales corresponding to electroviscous flow and electromigration yields a threshold criterion for the onset of instability. We present a validation of this threshold criterion with published experimental data and also describe the physical mechanism underlying the EHD instability of the electrophoretic shock wave.

摘要

毛细管电泳技术通常涉及在外加电场作用下在电解质溶液中传播的离子浓度激波。这些激波的特点是离子浓度和电导率的自锐度梯度与电场共线。在激波界面处电场和流体运动的耦合有时会导致不希望的电流体动力学(EHD)不稳定性。使用线性稳定性分析,我们描述了电泳激波的小振幅扰动的运动。我们的分析表明,EHD 不稳定性是由于电粘性流的不稳定性和激波的稳定电泳迁移之间的竞争造成的。对应于电粘性流和电泳迁移的时间尺度之比给出了不稳定性开始的阈值准则。我们用已发表的实验数据验证了这个阈值准则,并描述了电泳激波 EHD 不稳定性的物理机制。

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