Robust Critical Connectivity Threshold in Ranked Percolation of Granular Packings
Vasco C. Braz, N. A. M. Ara\'ujo

TL;DR
This paper identifies a robust critical connectivity threshold in ranked percolation of granular packings, which is crucial for predicting sintering onset and is insensitive to particle size variations.
Contribution
It introduces the critical number of bridges per particle as a universal estimator for percolation threshold in granular packings.
Findings
The percolation threshold based on contact number is robust across size distributions.
Numerical simulations confirm the critical bridges per particle as a universal metric.
Mean-field analysis links contact distribution to threshold robustness.
Abstract
The formation of sintering bridges in amorphous powders affects both flow behavior and perceived material quality. When sintering is driven by surface tension, bridges emerge sequentially, favoring contacts between smaller particles first. Predicting the connectivity percolation threshold is key to understanding and controlling the onset of sintering. We investigate ranked percolation in granular packings, where particles connect based on contact number. While the percolation threshold defined by the fraction of connected particles is non-universal and highly sensitive to particle size dispersion, we find that the critical number of sintered bridges per particle provides a robust estimator across different size distributions. Through numerical simulations and a mean-field approach, we link this robustness to the spatial distribution of contacts. Our results have broader implications for…
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Taxonomy
TopicsGranular flow and fluidized beds · Material Dynamics and Properties · Theoretical and Computational Physics
