Electric field mediated squeezing to bending transitions of interfacial instabilities for digitization and mixing of two-phase microflows
Autor: | Joydip Chaudhuri, KINGSHUK MANDAL, Tapas K Mandal, Shirsendu Mitra |
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Rok vydání: | 2019 |
Předmět: |
Fluid Flow and Transfer Processes
Physics Mechanical Engineering Direct current Computational Mechanics Reynolds number Laminar flow Mechanics Condensed Matter Physics 01 natural sciences 010305 fluids & plasmas law.invention Vortex Physics::Fluid Dynamics symbols.namesake Amplitude Mechanics of Materials law Electric field 0103 physical sciences symbols Two-phase flow 010306 general physics Alternating current |
Zdroj: | Physics of Fluids. 31:052005 |
ISSN: | 1089-7666 1070-6631 |
DOI: | 10.1063/1.5092198 |
Popis: | Electric field mediated instabilities in a tri-layer oil-water flow inside a microchannel have been explored with the help of the analytical models and computational fluid dynamic simulations. The twin oil-water interfaces undergo either in-phase bending or antiphase squeezing mode of deformation when a direct current (DC) electric field is applied locally inside the channel. The selection of modes largely depends on the magnitudes of the electric field intensity and oil-water interfacial tension. The instability modes grow to form an array of miniaturized oil-droplets with a significantly higher surface to volume ratio. While squeezing mode leads to a time-periodic dripping of droplets at relatively lower field intensities, the bending mode develops into a whiplash ejection of miniaturized droplets at higher field intensities. Subsequently, a transition from purely laminar to chaotic flow is observed, resembling the von Karman vortex street from a flow past immersed body, suitable for augmented heat, mass, and momentum transport inside a microfluidic channel. Under these conditions, the simulations also reveal the formation of multiple microvortices inside and outside the droplets, which helps in increase in the local Reynolds number for a better mixing efficiency in such microflows. Use of alternating current electric field instead of DC is also found to create on-demand flow features in a time-periodic manner following the mode selection. The amplitude, frequency, and waveform of such electric field is found to generate miniaturized oil-droplets along with the formation of an array of flow features, namely, thread, slugs, plugs, among others. |
Databáze: | OpenAIRE |
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