Clustering and preferential concentration of finite-size particles in forced homogeneous-isotropic turbulence
Markus Uhlmann, Agathe Chouippe

TL;DR
This study uses direct numerical simulations to investigate how finite-size particles cluster and distribute in forced homogeneous-isotropic turbulence, revealing weak global effects but specific preferential locations related to fluid acceleration fields.
Contribution
It provides new insights into the clustering behavior and spatial distribution of finite-size particles in turbulence, especially outside the point-particle approximation validity range.
Findings
Particles exhibit moderate clustering that decreases with size.
No significant correlation between particles and vortical structures.
Particles tend to locate near 'sticky points' related to fluid acceleration.
Abstract
We have performed interface-resolved direct numerical simulations of forced homogeneous-isotropic turbulence in a dilute suspension of spherical particles in the Reynolds number range Re-lambda=115-140. The solid-fluid density ratio was set to 1.5, gravity was set to zero, and two particle diameters were investigated corresponding to approximately 5 and 11 Kolmogorov lengths. Note that these particle sizes are clearly outside the range of validity of the point-particle approximation, as has been shown by Homann & Bec (2010). At the present parameter points the global effect of the particles upon the fluid flow is weak. We observe that the dispersed phase exhibits clustering with moderate intensity. The tendency to cluster, which was quantified in terms of the standard deviation of Voronoi cell volumes, decreases with the particle diameter. We have analyzed the relation between particle…
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