Interface-resolved simulations of particle suspensions in Newtonian, shear thinning and shear thickening carrier fluids

ORAL

Abstract

We have performed simulations via employing an Immersed Boundary Method (IBM) to study flows of noncolloidal spherical and rigid particles suspended in Newtonian, shear thinning and shear thickening fluids. We consider a linear Couette configuration to explore a wide range of solid volume fractions and particle Reynolds numbers. We show that the existence of a wide spectrum of the local shear rate and its dependency on the solid volume fraction and particle Reynolds number points to the deficiencies of the mean field argument in estimating the rheology of noncolloidal complex suspensions. We indicate the role of inertia at the microstructural level and include it in the closure for the suspension shear stress for both Newtonian and power-law suspending fluids.

*NSF (Grant No. CBET-1554044-CAREER) NSF-ERC (Grant No. CBET-1641152 Supplementary CAREER) European Research Council, Grant No. ERC-2013-CoG- 616186, TRITOS. SNIC (Swedish National Infrastructure for Computing)

Presenters

  • Sara Hormozi

    • Ohio University
    • Ohio University, Ohio University

Authors

  • Dhiya Alghalibi

    • KTH Royal Institute of Technology
  • Iman Lashgari

    • KTH Royal Institute of Technology
  • Luca Brandt

    • KTH Royal Institute of Technology
    • KTH Royal Inst of Tech
    • KTH Mechanics
  • Sara Hormozi

    • Ohio University
    • Ohio University, Ohio University