Microstructure-based prediction of hydrodynamic forces in stationary particle assemblies
Berend van Wachem, Hani Elmestikawy, Victor Ch\'eron

TL;DR
This paper develops microstructure-informed hydrodynamic force models for particle assemblies, enabling more accurate predictions of forces on particles using averaged flow data, validated through detailed simulations.
Contribution
It introduces novel force models based on Voronoi tessellation and symbolic regression, improving force prediction accuracy in particle assembly simulations.
Findings
Models predict average and individual particle forces accurately.
Significant accuracy improvement over traditional averaged force models.
Models are computationally efficient for integration into existing simulation frameworks.
Abstract
In the work, we derive novel hydrodynamic force models to describe the interaction of a flow with particles in an assembly when only an averaged resolution of the flow is available. These force models are able to predict the average drag on the particle assembly, as well as the deviations from the average drag force and the lift force for each individual particle in the assembly. To achieve this, PR-DNS of various particle assemblies and flow regimes are carried out, varying the particle volume fraction up to 0.6, and the mean particle flow Reynolds number up to 300. To characterize the structure of the particles in the assembly, a Voronoi tessellation is carried out, and a number of scalars, vectors and tensors are defined based upon this tessellation. The microstructure informed hydrodynamic force models are based on symbolic regressions of these quantities derived from the Voronoi…
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Taxonomy
TopicsGranular flow and fluidized beds · Particle Dynamics in Fluid Flows · Lattice Boltzmann Simulation Studies
