Random-Walk Metaball-Imaging Discrete Element Lattice Boltzmann Method for 3D Solute Transport in Fluid-Particle Systems with Complex Granular Morphologies
Yifeng Zhao, Pei Zhang, Stan Z. Li, S.A. Galindo-Torres

TL;DR
This paper introduces a comprehensive computational framework combining Metaball-Imaging, DEM, LBM, and RWM to accurately simulate 3D solute transport in fluid-particle systems with complex granular shapes, validated through analytical and experimental comparisons.
Contribution
The study develops a novel integrated method for simulating solute transport in systems with complex particle geometries, enhancing accuracy and robustness over existing models.
Findings
The framework accurately captures solute transport dynamics with strict mass conservation.
Particle shape features strongly correlate with dispersion coefficients.
Complex relationships between shape and transport require further analysis.
Abstract
Solute transport in fluid-particle systems is a fundamental process in numerous scientific and engineering disciplines. The simulation of it necessitates the consideration of solid particles with intricate shapes and sizes. To address this challenge, this study proposes the Random-Walk Metaball-Imaging Discrete Element Lattice Boltzmann Method (RW-MI-DELBM). In this model, we reconstruct particle geometries with the Metaball-Imaging algorithm, capture the particle behavior using the Discrete Element Method (DEM), simulate fluid behavior by the Lattice Boltzmann Method (LBM), and represent solute behavior through the Random Walk Method (RWM). Through the integration of these techniques with specially designed boundary conditions, we achieve to simulate the solute transport in fluid-particle systems comprising complex particle morphologies. Thorough validations, including analytical…
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Taxonomy
TopicsLattice Boltzmann Simulation Studies · Aerosol Filtration and Electrostatic Precipitation · Generative Adversarial Networks and Image Synthesis
