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On the erosion of cohesive granular soils by a submerged jet: a numerical approach

Authors :
Benseghier, Zeyd
Luu, Li-Hua
Cuéllar, Pablo
Bonelli, Stéphane
Philippe, Pierre
Risques, Ecosystèmes, Vulnérabilité, Environnement, Résilience (RECOVER)
Aix Marseille Université (AMU)-Institut National de Recherche pour l’Agriculture, l’Alimentation et l’Environnement (INRAE)
Federal Institute for Materials Research and Testing - Bundesanstalt für Materialforschung und -prüfung (BAM)
Région Sud, Provence-Alpes-Côte d'Azur
Source :
Granular Matter, Granular Matter, 2023, 25 (1), pp.1-20. ⟨10.1007/s10035-022-01289-5⟩
Publication Year :
2022
Publisher :
Springer Science and Business Media LLC, 2022.

Abstract

International audience; This paper presents an erosion interpretation of cohesive granular materials stressed by an impinging jet based on the results of a micromechanical simulation model. The numerical techniques are briefly described, relying on a two-dimensional Lattice Boltzmann Method coupled with a Discrete Element Methods including a simple model of solid intergranular cohesion.These are then used to perform a parametric study of a planar jet in the laminar regime impinging the surface of granular samples with different degrees of cohesive strength. The results show the pertinence of using a generalized form of the Shields criterion for the quantification of the erosion threshold, which is valid for cohesionless samples, through empirical calibration, and also for cohesive ones. Furthermore, the scouring kinetics are analysed here from the perspective of a self-similar expansion of the eroded crater leading to the identification of a characteristic erosion time and the quantification of the classical erosion coefficient. However, the presented results also challenge the postulate of a local erosion law including erodibility parameters as intrinsic material properties. The paper then reviews the main limitations of the simulation and current interpretation models, and discusses the potential causes for the observed discrepancies, questioning the pertinenceof using time-averaged macroscopic relations to correctly describe soil erosion. The paper concludes addressing this question with a complementary study of the presented simulations re-assessed at the particle-scale. The resulting local critical shear stress of single grains reveals a very wide dispersion of the data but nevertheless appears to confirm the general macroscopic trend derived for the cohesionless samples, while the introduction of cohesion implies a significant but systematic quantitative deviation between the microscopic and macroscopic estimates. Nevertheless, the micro data still shows consistently that the critical shear stress does actually vary approximately in linear proportion of the adhesive force.

Details

ISSN :
14347636 and 14345021
Volume :
25
Database :
OpenAIRE
Journal :
Granular Matter
Accession number :
edsair.doi.dedup.....595e887d3193ace6429c32d9d0f38dd5
Full Text :
https://doi.org/10.1007/s10035-022-01289-5