Pore Stabilization in Cohesive Granular Systems
arXiv:cond-mat/0206572 · doi:10.1080/0141159021000051460
Abstract
Cohesive powders tend to form porous aggregates which can be compacted by applying an external pressure. This process is modelled using the Contact Dynamics method supplemented with a cohesion law and rolling friction. Starting with ballistic deposits of varying density, we investigate how the porosity of the compacted sample depends on the cohesion strength and the friction coefficients. This allows to explain different pore stabilization mechanisms. The final porosity depends on the cohesion force scaled by the external pressure and on the lateral distance between branches of the ballistic deposit r_capt. Even if cohesion is switched off, pores can be stabilized by Coulomb friction alone. This effect is weak for round particles, as long as the friction coefficient is smaller than 1. However, for nonspherical particles the effect is much stronger.
10 pages, 15 figures
References in corpus (1)
Cited by in corpus (17)
- Identification of rolling resistance as a shape parameter in sheared granular media
- Computer simulation of model cohesive powders: influence of assembling procedure and contact laws on low consolidation states
- Flow of wet granular materials: a numerical study
- Computer simulation of model cohesive powders: Plastic consolidation, structural changes and elasticity under isotropic loads
- Influence of polydispersity on micromechanics of granular materials
- Frictional coupling between sliding and spinning motion
- Fluid depletion in shear bands
- The effect of contact torques on porosity of cohesive powders
- Influence of particle elasticity in shear testers
- Density profiles of loose and collapsed cohesive granular structures generated by ballistic deposition
- Athermal rheology of weakly attractive soft particles
- The contact dynamics method for granular media
- Collapsing granular suspensions
- A micromechanical model of collapsing quicksand
- Can one make a powder forget its history?
- Ultraslow settling kinetics of frictional cohesive powders
- Macroscopic and Microscopic Investigation on the History Dependence of the Mechanical Behaviour of Powders