Maximum Angle of Stability of a Wet Granular Pile
arXiv:cond-mat/0508352 · doi:10.1038/nphys106
Abstract
Anyone who has built a sandcastle recognizes that the addition of liquid to granular materials increases their stability. However, measurements of this increased stability often conflict with theory and with each other [1-7]. A friction-based Mohr-Coulomb model has been developed [3,8]. However, it distinguishes between granular friction and inter-particle friction, and uses the former without providing a physical mechanism. Albert, {\em et al.} [2] analyzed the geometric stability of grains on a pile's surface. The frictionless model for dry particles is in excellent agreement with experiment. But, their model for wet grains overestimates stability and predicts no dependence on system size. Using the frictionless model and performing stability analysis within the pile, we reproduce the dependence of the stability angle on system size, particle size, and surface tension observed in our experiments. Additionally, we account for past discrepancies in experimental reports by showing that sidewalls can significantly increase the stability of granular material.
4 pages, 4 figures
Cited by in corpus (13)
- Wet Granular Materials
- Shape and dynamics of seepage erosion in a horizontal granular bed
- Capillary Adhesion at the Nanometer Scale
- Wetting of crossed fibers: multiple steady states and symmetry breaking
- Lubrication effects on the flow of wet granular materials
- Penetration depth scaling for impact into wet granular packings
- Accretion Dynamics on Wet Granular Materials
- The effects of interparticle cohesion on the collapse of granular columns
- Influence of fine particles on the stability of a humid granular pile
- Bounds on the shear load of cohesionless granular matter
- Slope of Dry Granular Materials Surface is Generally Curved
- Granular aqueous suspensions with controlled inter-particular friction and adhesion
- Tunable capillary-induced attraction between vertical cylinders