English

Compression- and Shear-Driven Jamming of U-Shaped Particles in Two Dimensions

Soft Condensed Matter 2015-03-18 v3

Abstract

We carry out numerical simulations of soft, U-shaped, frictionless particles in d=2d=2 dimensions in order to explore the effects of complex particle shape on the jamming transition. We consider both cases of uniform compression-driven and shear-driven jamming as packing fraction ϕ\phi and compression or shear rate is varied. Upon slow compression, jamming is found to occur when the isostatic condition is satisfied. Under driven steady state shearing, jamming occurs at a higher packing fraction ϕJ\phi_J than observed in compression. A growing relaxation time and translational correlation length is found as ϕ\phi increases towards ϕJ\phi_J. We consider the orientational ordering and rotation of particles induced by the shear flow. Both nematic and tetratic ordering are found, but these decrease as ϕ\phi increases to ϕJ\phi_J. At the jamming transition, the nematic ordering further decreases, while the tetratic ordering increases, but the orientational correlation lengths remain small throughout. The average angular velocity of the particles is found to increase as ϕ\phi increases, saturating to a plateau just below ϕJ\phi_J, but then increasing again as ϕ\phi increases above ϕJ\phi_J.

Keywords

Cite

@article{arxiv.1402.2855,
  title  = {Compression- and Shear-Driven Jamming of U-Shaped Particles in Two Dimensions},
  author = {Theodore Marschall and Scott V. Franklin and S. Teitel},
  journal= {arXiv preprint arXiv:1402.2855},
  year   = {2015}
}

Comments

13 pages, 15 figures in Granular Matter 2015; substantially revised version including new discussion of orientational order and angular rotation of particles undergoing uniform shear strain flow

R2 v1 2026-06-22T03:06:48.565Z