English

Active Microrheology of Driven Granular Particles

Soft Condensed Matter 2014-04-29 v1

Abstract

When pulling a particle in a driven granular fluid with constant force FexF_{ex}, the probe particle approaches a steady-state average velocity vv. This velocity and the corresponding friction coefficient of the probe ζ=Fex/v\zeta=F_{ex}/v are obtained within a schematic model of mode-coupling theory and compared to results from event-driven simulations. For small and moderate drag forces, the model describes the simulation results successfully for both the linear as well as the nonlinear region: The linear response regime (constant friction) for small drag forces is followed by shear thinning (decreasing friction) for moderate forces. For large forces, the model demonstrates a subsequent increasing friction in qualitative agreement with the data. The square-root increase of the friction with force found in [Fiege et al., Granular Matter 14\boldsymbol{14}, 247 (2012)] is explained by a simple kinetic theory.

Keywords

Cite

@article{arxiv.1312.6514,
  title  = {Active Microrheology of Driven Granular Particles},
  author = {Ting Wang and Matthias Grob and Annette Zippelius and Matthias Sperl},
  journal= {arXiv preprint arXiv:1312.6514},
  year   = {2014}
}

Comments

5 pages, 4 figures

R2 v1 2026-06-22T02:33:55.821Z