Basal layer of granular flow down smooth and rough inclines: kinematics, slip laws and rheology

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Hauptverfasser: Wang, Teng, Jing, Lu, Kwok, Fiona C. Y., Sobral, Yuri D., Weinhart, Thomas, Thornton, Anthony R.
Format: Preprint
Veröffentlicht: 2025
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author Wang, Teng
Jing, Lu
Kwok, Fiona C. Y.
Sobral, Yuri D.
Weinhart, Thomas
Thornton, Anthony R.
author_facet Wang, Teng
Jing, Lu
Kwok, Fiona C. Y.
Sobral, Yuri D.
Weinhart, Thomas
Thornton, Anthony R.
contents Granular flow down an inclined plane is ubiquitous in geophysical and industrial applications. On rough inclines, the flow exhibits Bagnold's velocity profile and follows the so-called $μ(I)$ local rheology. On insufficiently rough or smooth inclines, however, velocity slip occurs at the bottom and a basal layer with strong agitation emerges below the bulk, which is not predicted by the local rheology. Here, we use discrete element method simulations to study detailed dynamics of the basal layer in granular flows down both smooth and rough inclines. We control the roughness via a dimensionless parameter, $R_a$, varied systematically from 0 (flat, frictional plane) to near 1 (very rough plane). Three flow regimes are identified: a slip regime ($R_a \lesssim 0.45$) where a dilated basal layer appears, a no-slip regime ($R_a \gtrsim 0.6$) and an intermediate transition regime. In the slip regime, the kinematics profiles (velocity, shear rate and granular temperature) of the basal layer strongly deviate from Bagnold's profiles. General basal slip laws are developed which express the slip velocity as a function of the local shear rate (or granular temperature), base roughness and slope angle. Moreover, the basal layer thickness is insensitive to flow conditions but depends somewhat on the inter-particle coefficient of restitution. Finally, we show that the rheological properties of the basal layer do not follow the $μ(I)$ rheology, but are captured by Bagnold's stress scaling and an extended kinetic theory for granular flows. Our findings can help develop more predictive granular flow models in the future.
format Preprint
id arxiv_https___arxiv_org_abs_2506_17920
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Basal layer of granular flow down smooth and rough inclines: kinematics, slip laws and rheology
Wang, Teng
Jing, Lu
Kwok, Fiona C. Y.
Sobral, Yuri D.
Weinhart, Thomas
Thornton, Anthony R.
Fluid Dynamics
Soft Condensed Matter
Granular flow down an inclined plane is ubiquitous in geophysical and industrial applications. On rough inclines, the flow exhibits Bagnold's velocity profile and follows the so-called $μ(I)$ local rheology. On insufficiently rough or smooth inclines, however, velocity slip occurs at the bottom and a basal layer with strong agitation emerges below the bulk, which is not predicted by the local rheology. Here, we use discrete element method simulations to study detailed dynamics of the basal layer in granular flows down both smooth and rough inclines. We control the roughness via a dimensionless parameter, $R_a$, varied systematically from 0 (flat, frictional plane) to near 1 (very rough plane). Three flow regimes are identified: a slip regime ($R_a \lesssim 0.45$) where a dilated basal layer appears, a no-slip regime ($R_a \gtrsim 0.6$) and an intermediate transition regime. In the slip regime, the kinematics profiles (velocity, shear rate and granular temperature) of the basal layer strongly deviate from Bagnold's profiles. General basal slip laws are developed which express the slip velocity as a function of the local shear rate (or granular temperature), base roughness and slope angle. Moreover, the basal layer thickness is insensitive to flow conditions but depends somewhat on the inter-particle coefficient of restitution. Finally, we show that the rheological properties of the basal layer do not follow the $μ(I)$ rheology, but are captured by Bagnold's stress scaling and an extended kinetic theory for granular flows. Our findings can help develop more predictive granular flow models in the future.
title Basal layer of granular flow down smooth and rough inclines: kinematics, slip laws and rheology
topic Fluid Dynamics
Soft Condensed Matter
url https://arxiv.org/abs/2506.17920