Start-up shear of spherocylinder packings: effect of friction
arXiv:2105.01508 · doi:10.1103/PhysRevE.103.052903
Abstract
We study the response to shear deformations of packings of long spherocylindrical particles that interact via frictional forces with friction coefficient . The packings are produced and deformed with the help of molecular dynamics simulations combined with minimization techniques performed on a GPU. We calculate the linear shear modulus , which is orders of magnitude larger than the modulus in the corresponding frictionless system. The motion of the particles responsible for these large frictional forces is governed by and increases with the length of the spherocylinders. One consequence of this motion is that the shear modulus approaches a finite value in the limit , even though the density of the packings vanishes, . By way of contrast, the frictionless modulus decreases to zero, , in accordance with the behavior of density. Increasing the strain beyond a value , the packing undergoes a "shear-thinning" transition from the large frictional to the smaller frictionless modulus when contacts saturate at the Coulomb inequality and start to slide. In this regime, sliding friction contributes a "yield stress" and the stress behaves as . The interplay between static and sliding friction gives rise to hysteresis in oscillatory shear simulations.
References in corpus (6)
- Stress-strain behavior and geometrical properties of packings of elongated particles
- Nonaffine rubber elasticity for stiff polymer networks
- Rheology of dense granular flows for elongated particles
- Jamming of semiflexible polymers
- Shear-Driven Flow of Athermal, Frictionless, Spherocylinder Suspensions in Two Dimensions: Spatial Structure and Correlations
- Packings of frictionless spherocylinders