Inertial Focusing of Spherical Particles: The Effects of Rotational Motion

Fuente: arXiv
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Autores principales: Alexeev, Dmitry, Litvinov, Sergey, Economides, Athena, Amoudruz, Lucas, Toner, Mehmet, Koumoutsakos, Petros
Formato: Preprint
Publicado: 2024
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author Alexeev, Dmitry
Litvinov, Sergey
Economides, Athena
Amoudruz, Lucas
Toner, Mehmet
Koumoutsakos, Petros
author_facet Alexeev, Dmitry
Litvinov, Sergey
Economides, Athena
Amoudruz, Lucas
Toner, Mehmet
Koumoutsakos, Petros
contents The identification of cells and particles based on their transport properties in microfluidic devices is crucial for numerous applications in biology and medicine. Neutrally buoyant particles transported in microfluidic channels, migrate laterally towards stable locations due to inertial effects. However, the effect of the particle and flow properties on these focusing positions remain largely unknown. We conduct large scale simulations with dissipative particle dynamics, demonstrating that freely moving particles exhibit significant differences in their focusing patterns from particles that are prevented from rotation. In circular pipes, we observe drastic changes in rotating versus non-rotating focusing positions. We demonstrate that rotation-induced lateral lift force is significant, unlike previously believed, and is linearly dependent on the rotation magnitude. A simple phenomenological explanation extending existing theories is presented, that agrees well with our numerical findings. In square ducts, we report four face-centered stable positions for rotating particles, in accordance with experimental studies on a range of Reynolds numbers 50 < Re < 200. However, non-rotating particles stay scattered on a concentric one-dimensional annulus, revealing qualitatively different behavior with respect to the free ones. Our findings suggest new designs for micro-particle and cell sorting in inertia-based microfluidics devices.
format Preprint
id arxiv_https___arxiv_org_abs_2408_09552
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Inertial Focusing of Spherical Particles: The Effects of Rotational Motion
Alexeev, Dmitry
Litvinov, Sergey
Economides, Athena
Amoudruz, Lucas
Toner, Mehmet
Koumoutsakos, Petros
Fluid Dynamics
The identification of cells and particles based on their transport properties in microfluidic devices is crucial for numerous applications in biology and medicine. Neutrally buoyant particles transported in microfluidic channels, migrate laterally towards stable locations due to inertial effects. However, the effect of the particle and flow properties on these focusing positions remain largely unknown. We conduct large scale simulations with dissipative particle dynamics, demonstrating that freely moving particles exhibit significant differences in their focusing patterns from particles that are prevented from rotation. In circular pipes, we observe drastic changes in rotating versus non-rotating focusing positions. We demonstrate that rotation-induced lateral lift force is significant, unlike previously believed, and is linearly dependent on the rotation magnitude. A simple phenomenological explanation extending existing theories is presented, that agrees well with our numerical findings. In square ducts, we report four face-centered stable positions for rotating particles, in accordance with experimental studies on a range of Reynolds numbers 50 < Re < 200. However, non-rotating particles stay scattered on a concentric one-dimensional annulus, revealing qualitatively different behavior with respect to the free ones. Our findings suggest new designs for micro-particle and cell sorting in inertia-based microfluidics devices.
title Inertial Focusing of Spherical Particles: The Effects of Rotational Motion
topic Fluid Dynamics
url https://arxiv.org/abs/2408.09552