A critical state μ(I)-rheology model for cohesive granular flows

Lars Blatny, Nico Gray, Johan Gaume

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Abstract

The dynamic behavior of granular media can be observed widely in nature and in many industrial processes. Yet, the modeling of such media remains challenging as they may act with solid-like and fluid-like properties depending on the rate of the flow and can display a varying apparent friction, cohesion and compressibility. Over the last two decades, the μ(I)-rheology has become well-established for modeling granular liquids in a fluid mechanics framework where the apparent friction μ depends on the inertial number I. In the geo-mechanics
community, modeling the deformation of granular solids typically relies on concepts from Critical State Soil Mechanics (CSSM). Along the lines of recent attempts to combine critical state and the μ(I)-rheology, we develop a continuum model based on Modified Cam-Clay (MCC) in an elastoplastic framework which recovers the μ(I)-rheology under flow. This model permits a treatment of plastic compressibility in systems with or without cohesion, where the cohesion is assumed to be the result of persistent inter-granular attractive forces. Implemented in a 2D/3D Material Point Method (MPM), it allows for the trivial treatment of the free surface. The proposed model approximately reproduces analytical solutions of steady-state cohesionless flow and is further compared to
previous cohesive and cohesionless experiments. In particular, satisfactory agreements with several experiments of granular collapse are demonstrated, albeit with shear bands which can affect the smoothness of the surface. Finally, the model is able to qualitatively reproduce the multiple steady-state solutions of granular flow recently observed in experiments of flow over obstacles.
Original languageEnglish
Article numberA67
JournalJournal of Fluid Mechanics
Volume997
DOIs
Publication statusPublished - 25 Oct 2024

Keywords

  • Granular Media
  • Avalanches
  • Rheology
  • Non Newtonian Flows

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