Critical Scaling of Bagnold Rheology at the Jamming Transition of Frictionless Two Dimensional Disks
arXiv:1510.03312 · doi:10.1103/PhysRevE.93.052902
Abstract
We carry out constant volume simulations of steady-state, shear driven, rheology in a simple model of bidisperse, soft-core, frictionless disks in two dimensions, using a dissipation law that gives rise to Bagnoldian rheology. We carry out a detailed critical scaling analysis of our resulting data for pressure and shear stress , in order to determine the critical exponent that describes the algebraic divergence of the Bagnold transport coefficients, as the jamming transition is approached from below. We show that it is necessary, for the strain rates considered in this work, to consider the leading correction-to-scaling term in order to achieve a self-consistent analysis of our data. Our resulting value is clearly larger than the theoretical prediction by Otsuki and Hayakawa, and is consistent with earlier numerical results by Peyneau and Roux, and recent theoretical predictions by DeGiuli et al. We have also considered the macroscopic friction and similarly find results consistent with Peyneau and Roux, and with DeGiuli et al. Our results confirm that the shear driven jamming transition in Bagnoldian systems is well described by a critical scaling theory (as was found previously for Newtonian systems), and we relate this scaling theory to the phenomenological constituent laws for dilatancy and friction.
20 pages, 21 figures; revised manuscript according to published version
References in corpus (13)
- Jamming at Zero Temperature and Zero Applied Stress: the Epitome of Disorder
- Fractal free energy landscapes in structural glasses
- Frictionless bead packs have macroscopic friction, but no dilatancy
- Power-law friction in closely-packed granular materials
- Jamming in finite systems: stability, anisotropy, fluctuations and scaling
- Scaling properties of granular rheology near the jamming transition
- Unified Theory of Inertial Granular Flows and Non-Brownian Suspensions
- Critical Scaling of Shearing Rheology at the Jamming Transition of Soft Core Frictionless Disks
- Diverging viscosity and soft granular rheology in non-Brownian suspensions
- Universal scaling for the jamming transition
- The critical behavior of 3D Ising glass models: universality and scaling corrections
- Contact Changes near Jamming
- Behavior of pressure and viscosity at high densities for two-dimensional hard and soft granular materials
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