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How does confinement affect the dynamics of viscous vesicles and red blood cells?

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arxiv 1204.6016 v4 pith:3X4FQIGS submitted 2012-04-26 cond-mat.soft physics.bio-phphysics.flu-dyn

How does confinement affect the dynamics of viscous vesicles and red blood cells?

classification cond-mat.soft physics.bio-phphysics.flu-dyn
keywords transitionbloodcellsconfinementdynamicsmotionviscouscontrast
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Despite its significance in microfluidics, the effect of confinement on the transition from the tank-treading (steady motion) to the tumbling (unsteady motion) dynamical state of deformable micro-particles has not been studied in detail. In this paper, we investigate the dynamics of a single viscous vesicle under confining shear as a general model system for red blood cells, capsules, or viscous droplets. The transition from tank-treading to tumbling motion can be triggered by the ratio between internal and external fluid viscosities. Here, we show that the transition can be induced solely by reducing the confinement, keeping the viscosity contrast constant. The observed dynamics results from the variation of the relative importance of viscous-, pressure-, and lubrication-induced torques exerted upon the vesicle. Our findings are of interest for designing future experiments or microfluidic devices: the possibility to trigger the tumbling-to-tank-treading transition either by geometry or viscosity contrast alone opens attractive possibilities for microrheological measurements as well as the detection and diagnosis of diseased red blood cells in confined flow.

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