The Versatile Elastohydrodynamics of a Free Particle near a Thin Soft Wall
ORAL
Abstract
We address the free motion of a buoyant particle inside a viscous fluid, in the vicinity of a thin compressible elastic wall. After discussing the main scalings, we obtain analytically the dominant drag forces within the soft lubrication approximation. By including those into the equations of motion of the particle, we establish a general governing system of three coupled nonlinear and singular differential equations, that describe the three essential motions: sedimentation, hydroplaning, and hydrospinning, through four dimensionless control parameters. Numerical integration allows us to predict a wide zoology of exotic solutions -- despite the low-Reynolds feature of the flow -- including: spontaneous oscillation, Magnus-like effect, enhanced sedimentation, and boomerang-like effect. We compare these predictions to experiments. The presented elementary approach could be of interest in the description of a broad variety of elastohydrodynamical phenomena, including: landslides, ageing of cartilaginous joints, and motion of a cell in a microfluidic channel or in a blood vessel.
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Authors
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Thomas Salez
UMR CNRS 7083 Gulliver, ESPCI ParisTech, PSL Research University, PCT Lab, UMR CNRS 7083 Gulliver, ESPCI ParisTech, PSL Research University, Paris, France
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Baudouin Saintyves
SEAS, Harvard University, Cambridge, MA, USA, Harvard, Harvard University
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L. Mahadevan
Harvard School of Engineering and Applied Science, Harvard University, SEAS, Harvard University, Cambridge, MA, USA, Harvard, School of Engineering and Applied Sciences, Harvard University, Cambridge, MA 02138,USA., SEAS, Department of organismic and evolutionary biology, Harvard university, SEAS, Harvard University, Harvard Univ, School of Engineering and Applied Sciences, Wyss Institute, Harvard University