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Structural Order Drives Diffusion in a Granular Packing
Luce, David; Gans, Adrien; Kiesgen de Richter, Sébastien et al.
2025
 

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Keywords :
Granular packing; Silo; hexatic order; crystallization; bidisperse; granular media; dynamic heterogeneity; steel beads; discharge; cohesion; kinematic model; PTV; Particle Tracking Velocimetry; experimental; granular flow; gravity
Abstract :
[en] We investigate how structural ordering, i.e. crystallization, affects the flow of bidisperse granular materials in a quasi-two-dimensional silo. By systematically varying the mass fraction of two particle sizes, we finely tune the degree of local order. Using high-speed imaging and kinematic modeling, we show that crystallization significantly enhances the diffusion length b, a key parameter controlling the velocity profiles within the flowing medium. We reveal a strong correlation between b and the hexatic order parameter ψ6, highlighting the role of local structural organization in governing macroscopic flow behavior. Furthermore, we demonstrate that pressure gradients within the silo promote the stabilization of orientational order even in the absence of crystallization, thus intrinsically increasing b with height. These findings establish a direct link between microstructural order, pressure, and transport properties in granular silo flows.
Disciplines :
Physics
Author, co-author :
Luce, David  ;  Université de Liège - ULiège > Complex and Entangled Systems from Atoms to Materials (CESAM)
Gans, Adrien;  UL - Université de Lorraine
Kiesgen de Richter, Sébastien;  UL - Université de Lorraine ; IUF - Institut Universitaire de France
Vandewalle, Nicolas  ;  Université de Liège - ULiège > Département de physique > Physique statistique
Language :
French
Title :
Structural Order Drives Diffusion in a Granular Packing
Alternative titles :
[fr] L'ordre structurel gouverne la diffusion dans un empilement granulaire
Original title :
[en] Structural Order Drives Diffusion in a Granular Packing
Publication date :
01 July 2025
Version :
preprint
Number of pages :
5
Source :
Development Goals :
9. Industry, innovation and infrastructure
Funders :
UL - Université de Lorraine
ULg - Université de Liège
Available on ORBi :
since 01 July 2025

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