Direct Numerical Simulation of Electrokinetic Instability and Transition to Chaotic Motion
E. A. Demekhin, N. V. Nikitin, V. S. Shelistov

TL;DR
This paper investigates electrokinetic instability and its transition to chaos near charge-selective surfaces through numerical simulations and analysis, revealing multiple regimes and confirming experimental observations.
Contribution
It introduces a comprehensive numerical and theoretical study of electrokinetic instability, detailing the transition to chaos without Hopf bifurcation and validating experimental findings.
Findings
Identified regimes: steady, vortices, unsteady, periodic, chaotic
Confirmed threshold of instability matches experimental data
Observed spike-like charge profiles along surfaces
Abstract
A new type of instability - electrokinetic instability - and an unusual transition to chaotic motion near a charge-selective surface was studied by numerical integration of the Nernst-Planck-Poisson-Stokes system and a weakly nonlinear analysis near the threshold of instability. Two kinds of initial conditions were considered: (a) white noise initial conditions to mimic "room disturbances" and subsequent natural evolution of the solution; (b) an artificial monochromatic ion distribution with a fixed wave number to simulate regular wave patterns. The results were studied from the viewpoint of hydrodynamic stability and bifurcation theory. The threshold of electroconvective movement was found by the linear spectral stability theory, the results of which were confirmed by numerical simulation of the entire system. The following regimes, which replace each other as the potential drop…
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