Rheology of dense suspensions of elastic capsules: normal stresses, yield stress, jamming and confinement effects.

Soft Matter

Interdisciplinary Centre for Advanced Materials Simulation (ICAMS), Ruhr-Universität Bochum, Universitätsstr. 150, 44780 Bochum, Germany.

Published: June 2014

AI Article Synopsis

  • The study investigates how dense suspensions of elastic capsules, like red blood cells, behave when subjected to shear stress, revealing that viscosity is largely influenced by the capsules' shear elasticity.
  • A dynamic yield stress emerges at a critical volume fraction, with shear stress following a critical jamming scenario, while certain stress measures are affected by the cells' movement dynamics.
  • The research also examines how confinement effects alter viscosity, increasing its magnitude and promoting shear-thinning behavior, with findings explained by effective medium models.

Article Abstract

We study the shearing rheology of dense suspensions of elastic capsules, taking aggregation-free red blood cells as a physiologically relevant example. Particles are non-Brownian and interact only via hydrodynamics and short-range repulsive forces. An analysis of the different stress mechanisms in the suspension shows that the viscosity is governed by the shear elasticity of the capsules, whereas the repulsive forces are subdominant. Evidence for a dynamic yield stress above a critical volume fraction is provided and related to the elastic properties of the capsules. The shear stress is found to follow a critical jamming scenario and is rather insensitive to the tumbling-to-tank-treading transition. The particle pressure and normal stress differences display some sensitivity to the dynamical state of the cells and exhibit a characteristic scaling, following the behavior of a single particle, in the tank-treading regime. The behavior of the viscosity in the fluid phase is rationalized in terms of effective medium models. Furthermore, the role of confinement effects, which increase the overall magnitude and enhance the shear-thinning of the viscosity, is discussed.

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Source
http://dx.doi.org/10.1039/c4sm00081aDOI Listing

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