Publication | Open Access
Pore‐scale modeling of fluid‐particles interaction and emerging poromechanical effects
148
Citations
32
References
2013
Year
Solid PhaseEngineeringMultiscale MechanicsMicromechanicsFluid MechanicsMechanical EngineeringPorous Medium EquationsGranular MediumPorous BodyMechanics ModelingDeformation ModelingMicro‐hydromechanical ModelHydromechanicsMaterial MechanicsPore StructurePorothermoelasticityGeomechanicsPorosityFluid‐particles InteractionGranular MaterialsMechanics Of Materials
SUMMARY A micro‐hydromechanical model for granular materials is presented. It combines the discrete element method for the modeling of the solid phase and a pore‐scale finite volume formulation for the flow of an incompressible pore fluid. The coupling equations are derived and contrasted against the equations of conventional poroelasticity. An analogy is found between the discrete element method pore‐scale finite volume coupling and Biot's theory in the limit case of incompressible phases. The simulation of an oedometer test validates the coupling scheme and demonstrates the ability of the model to capture strong poromechanical effects. A detailed analysis of microscale strain and stress confirms the analogy with poroelasticity. An immersed deposition problem is finally simulated and shows the potential of the method to handle phase transitions. Copyright © 2013 John Wiley & Sons, Ltd.
| Year | Citations | |
|---|---|---|
Page 1
Page 1