Mapping From Soft to Hard-Core Disks Near the Athermal Shear Driven Jamming Transition

ORAL

Abstract

We examine the rheology of soft-core, bidisperse, frictionless disks in two dimensions at zero temperature with overdamped dynamics. For shear driven flow at a uniform strain rate $\dot\gamma$, we find a simple expression for an effective hard-core packing fraction, $\phi_{\mathrm{eff}}$, such that the pressure equivalent to the shear viscosity, $p/\dot\gamma$, for different shear rates, packing fractions, and different contact interactions all collapse onto a common curve when plotted as a function of $\phi_{\mathrm{eff}}$. This function is a characteristic of the hard-core limit as it describes the system in the limit of vanishing particle overlaps. This mapping recovers all the critical behavior found in earlier scaling analyses. We use this mapping to derive a duality relation that gives the exponent of the non-linear Herschel-Bulkley rheology \emph{above} jamming in terms of the exponent of the diverging viscosity \emph{below} jamming.

*Work supported by Energy Grant No.\ DE-FG02-06ER46298 and Swedish Research Council Grant No.\ 2010-3725. Simulations were performed on resources provided by the Swedish National Infrastructure for Computing (SNIC) at PDC and HPC2N.

Authors

  • Peter Olsson

    • Ume{\aa} University, 90187 Ume{\aa}, Sweden
    • Department of Physics, Ume{\aa} University, 90187 Ume{\aa}
  • Stephen Teitel

    • University of Rochester, Rochester, NY 14627
    • Department of Physics and Astronomy, University of Rochester, Rochester, NY 14627
    • University of Rochester