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Vortical flow structures induced by red blood cells in capillaries

Authors :
Johannes Römer
François Yaya
Thomas John
Christian Wagner
Thomas Podgorski
Stephan Gekle
Achim Guckenberger
DYnamique des Fluides COmplexes et Morphogénèse [Grenoble] (DYFCOM)
Laboratoire Interdisciplinaire de Physique [Saint Martin d’Hères] (LIPhy)
Centre National de la Recherche Scientifique (CNRS)-Université Joseph Fourier - Grenoble 1 (UJF)-Centre National de la Recherche Scientifique (CNRS)-Université Joseph Fourier - Grenoble 1 (UJF)
Source :
Microcirculation, Microcirculation, Wiley, 2021, 28 (5), ⟨10.1111/micc.12693⟩
Publication Year :
2021
Publisher :
Universität des Saarlandes, 2021.

Abstract

Knowledge about the flow field of the plasma around the red blood cells in capillary flow is important for a physical understanding of blood flow and the transport of micro- and nanoparticles and molecules in the flowing plasma. We conduct an experimental study on the flow field around red blood cells in capillary flow that are complemented by simulations of vortical flow between red blood cells. Red blood cells were injected in a 10x12 micrometer rectangular microchannel at a low hematocrit and the flow field around a single or two cells have been characterized thanks to a highspeed camera and by tracking 250 nm nanoparticles in flow behaving as tracers. While the flow field around a steady croissant shape is found to be relatively similar to that of a rigid sphere, the flow field around a slipper shape exhibits a small vortex at the rear of the red blood cell. Even more pronounced are vortex-like structures observed in the central region between two neighboring croissants. Conclusions: The rotation frequency of the vortices is to a good approximation, inversely proportional to the distance between the cells. Our experimental data are confirmed and complemented by numerical simulations.<br />Preprint version of the manuscript that has been accepted for publication in Microcirculation

Details

Language :
English
ISSN :
10739688
Database :
OpenAIRE
Journal :
Microcirculation, Microcirculation, Wiley, 2021, 28 (5), ⟨10.1111/micc.12693⟩
Accession number :
edsair.doi.dedup.....b18f02581682d0a8e6908afa1a8485e6
Full Text :
https://doi.org/10.22028/d291-34643