English

Discontinuous Shear Thickening in Brownian Suspensions By Dynamic Simulation

Soft Condensed Matter 2015-12-04 v2 Fluid Dynamics

Abstract

Dynamic particle-scale numerical simulations are used to show that the shear thickening observed in dense colloidal, or Brownian, suspensions is of a similar nature to that observed in non-colloidal suspensions, i.e., a stress-induced transition from a flow of lubricated near-contacting particles to a flow of a frictionally contacting network of particles. Abrupt (or discontinuous) shear thickening is found to be a geometric rather than hydrodynamic phenomenon; it stems from the strong sensitivity of the jamming volume fraction to the nature of contact forces between suspended particles. The thickening obtained in a colloidal suspension of purely hard frictional spheres is qualitatively similar to experimental observations. However, the agreement cannot be made quantitative with only hydrodynamics, frictional contacts and Brownian forces. Therefore the role of a short-range repulsive potential mimicking the stabilization of actual suspensions on the thickening is studied. The effects of Brownian and repulsive forces on the onset stress can be combined in an additive manner. The simulations including Brownian and stabilizing forces show excellent agreement with experimental data for the viscosity η\eta and the second normal stress difference N2N_2.

Keywords

Cite

@article{arxiv.1508.01243,
  title  = {Discontinuous Shear Thickening in Brownian Suspensions By Dynamic Simulation},
  author = {Romain Mari and Ryohei Seto and Jeffrey F. Morris and Morton M. Denn},
  journal= {arXiv preprint arXiv:1508.01243},
  year   = {2015}
}

Comments

7 pages, 7 figures. v2: improved text. Accepted in PNAS

R2 v1 2026-06-22T10:27:28.769Z