Nonlinear Three-Dimensional Electrohydrodynamic Interactions of Viscous Dielectric Drops
Michael A. McDougall, Stephen K. Wilson, Debasish Das

TL;DR
This paper develops a semi-analytical nonlinear three-dimensional model for leaky dielectric drops in electric fields, capturing charge relaxation, convection, and Quincke rotation, with results matching previous studies and revealing complex interactions.
Contribution
It introduces the first model within the Taylor--Melcher framework that includes both charge relaxation and convection effects for drop interactions.
Findings
Model captures transition to Quincke rotation in drops.
Good agreement with previous numerical and experimental results.
Reveals unique interaction effects in drop pairs versus isolated drops.
Abstract
When a drop of a leaky dielectric fluid is suspended in another fluid and subjected to a uniform DC electric field, it becomes polarized, leading to tangential electric stresses that drive fluid motion both inside and outside the drop. In the presence of a second drop, the dynamics of the first drop are altered due to electrohydrodynamic interactions with the second, causing the drops to translate due to dielectrophoretic forces and hydrodynamic interactions. We present a semi-analytical nonlinear three-dimensional small deformation theory for a pair of identical, widely-separated leaky dielectric drops suspended in a weakly conducting fluid. This theory is valid under conditions of large drop separation, high drop viscosity, and high surface tension, ensuring that the drops remain nearly spherical. For the first time, we develop a model within the Taylor--Melcher leaky dielectric…
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Taxonomy
TopicsElectrohydrodynamics and Fluid Dynamics · Electrowetting and Microfluidic Technologies · Microfluidic and Bio-sensing Technologies
