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Updated: Sep 11, 2025

Visually Based Characterization of the Incipient Particle Motion in Regular Substrates: From Laminar to Turbulent Conditions
Published on: February 22, 2018
Flow regimes and repose angle in a rotating drum filled with highly concave particles
Weiyi Wang1, Jonathan Barés1, Mathieu Renouf1
1LMGC, Université de Montpellier, CNRS, Montpellier, France.
This study explores granular flow in rotating drums, revealing two regimes: rolling and slumping. Particle shape and friction significantly impact flow dynamics, offering insights into metagranular matter behavior.
Area of Science:
- Granular physics
- Complex systems
- Material science
Background:
- Understanding granular material flow is crucial in various industrial processes.
- Particle shape and interactions significantly influence bulk behavior.
- Limited research exists on highly concave particle packings in dynamic systems.
Purpose of the Study:
- To investigate the flow regimes and repose angles of highly concave particle packings in a rotating drum.
- To determine how particle geometry, friction, and rotation speed affect granular flow dynamics.
- To establish phase diagrams for different flow behaviors.
Main Methods:
- Experimental setup involving a rotating drum with controlled particle shapes and properties.
- Systematic variation of grain geometry (spherical to nonconvex), frictional properties, and particle branch number.
- Analysis of flow regimes (rolling and slumping) using quantitative criteria like repose angle difference and area ratio.
Main Results:
- Identification of two distinct flow regimes: rolling (solid-like near walls, liquid-like at free surface) and slumping (cyclic avalanches, solid body rotation).
- Demonstration that particle concavity, friction, and drum speed are key factors influencing flow behavior.
- Construction of phase diagrams illustrating the transitions between identified flow regimes.
Conclusions:
- Particle concavity and friction play a critical role in dictating granular flow patterns.
- The study provides new insights into the mechanical behavior of metagranular matter.
- Findings contribute to a better understanding of granular material dynamics in complex geometries.
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