Constriction between contacting sand particles.
Credits: Taylor et al., (2014) Computers and Geotechnics 69, 279-290
Constriction between contacting sand particles.
Credits: Taylor et al., (2014) Computers and Geotechnics 69, 279-290
Image of evolution of particle displacements during DEM simulation of direct shear test on spherical particles
Image of evolution of strong force chains during DEM simulation of direct shear test on spherical particles
Silo discharge of 1mm glass beads seen using X-rays, shown in real time.
For the full paper, see here.
When brittle porous media interact with chemically active fluids, they may suddenly crumble. This has reportedly triggered the collapse of rockfill dams, sinkholes, and ice shelves. To study this problem, we use a surrogate experiment for the effect of fluid on rocks and ice involving a column of puffed rice partially soaked in a reservoir of liquid under constant pressure. We disclose localized crushing collapse in the unsaturated region that produces incremental global compaction and loud audible beats. These “ricequakes” repeat perpetually during the experiments and propagate upward through the material. The delay time between consecutive quakes grows linearly with time and is accompanied by creep motion. All those new observations can be explained using a simple chemomechanical model of capillary-driven crushing steps progressing through the micropores.
See here for more information.
Next time you compress rocks or grains, think compaction bands. For more information, see here.
Credits: The University of Sydney, Australia and San Diego State University, USA
Credits: The University of Cambridge, UK
Credits: The University of Sydney, Australia and Laboratoire 3SR, France