Direct numerical simulation of electrokinetic transport phenomena in fluids: variational multi-scale stabilization and octree-based mesh refinement
Sungu Kim, Kumar Saurabh, Makrand A. Khanwale, Ali Mani, Robbyn K., Anand, Baskar Ganapathysubramanian

TL;DR
This paper introduces a novel computational framework combining variational multiscale stabilization, adaptive octree mesh refinement, and semi-implicit time integration to accurately simulate electrokinetic phenomena in complex geometries.
Contribution
It develops a comprehensive DNS approach for electrokinetic systems that effectively handles small charge layers, stiff couplings, and complex geometries with enhanced stability and efficiency.
Findings
Successfully captures electro-convective flows in complex devices
Enables longer simulation times with stable numerical schemes
Efficiently resolves diffuse charge layers using adaptive meshing
Abstract
Computational modeling of charged species transport has enabled the analysis, design, and optimization of a diverse array of electrochemical and electrokinetic devices. These systems are represented by the Poisson-Nernst-Planck (PNP) equations coupled with the Navier-Stokes (NS) equation. Direct numerical simulation (DNS) to accurately capture the spatio-temporal variation of ion concentration and current flux remains challenging due to the (a) small critical dimension of the diffuse charge layer (DCL), (b) stiff coupling due to fast charge relaxation times, large advective effects, and steep gradients close to boundaries, and (c) complex geometries exhibited by electrochemical devices. In the current study, we address these challenges by presenting a direct numerical simulation framework that incorporates (a) a variational multiscale (VMS) treatment, (b) a block-iterative strategy in…
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Taxonomy
TopicsMembrane-based Ion Separation Techniques · Electromagnetic Simulation and Numerical Methods
