Computer Simulation Study of Collective Phenomena in Dense Suspensions of Red Blood Cells under Shear

Nonfiction, Science & Nature, Science, Physics, General Physics
Cover of the book Computer Simulation Study of Collective Phenomena in Dense Suspensions of Red Blood Cells under Shear by Timm Krüger, Vieweg+Teubner Verlag
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Author: Timm Krüger ISBN: 9783834823762
Publisher: Vieweg+Teubner Verlag Publication: October 2, 2012
Imprint: Vieweg+Teubner Verlag Language: English
Author: Timm Krüger
ISBN: 9783834823762
Publisher: Vieweg+Teubner Verlag
Publication: October 2, 2012
Imprint: Vieweg+Teubner Verlag
Language: English

The rheology of dense red blood cell suspensions is investigated via computer simulations based on the lattice Boltzmann, the immersed boundary, and the finite element methods. The red blood cells are treated as extended and deformable particles immersed in the ambient fluid. In the first part of the work, the numerical model and strategies for stress evaluation are discussed. In the second part, the behavior of the suspensions in simple shear flow is studied for different volume fractions, particle deformabilities, and shear rates. Shear thinning behavior is recovered. The existence of a shear-induced transition from a tumbling to a tank-treading motion is demonstrated. The transition can be parameterized by a single quantity, namely the effective capillary number. It is the ratio of the suspension stress and the characteristic particle membrane stress. At the transition point, a strong increase in the orientational order of the red blood cells and a significant decrease of the particle diffusivity are observed. However, the average cell deformation shows no signature of the transition.

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The rheology of dense red blood cell suspensions is investigated via computer simulations based on the lattice Boltzmann, the immersed boundary, and the finite element methods. The red blood cells are treated as extended and deformable particles immersed in the ambient fluid. In the first part of the work, the numerical model and strategies for stress evaluation are discussed. In the second part, the behavior of the suspensions in simple shear flow is studied for different volume fractions, particle deformabilities, and shear rates. Shear thinning behavior is recovered. The existence of a shear-induced transition from a tumbling to a tank-treading motion is demonstrated. The transition can be parameterized by a single quantity, namely the effective capillary number. It is the ratio of the suspension stress and the characteristic particle membrane stress. At the transition point, a strong increase in the orientational order of the red blood cells and a significant decrease of the particle diffusivity are observed. However, the average cell deformation shows no signature of the transition.

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