Enhancing Transport Barriers with Swimming Microorganisms in Chaotic Flows

Fuente: arXiv
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Main Authors: Ran, Ranjiangshang, Arratia, Paulo E.
Format: Preprint
Published: 2023
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author Ran, Ranjiangshang
Arratia, Paulo E.
author_facet Ran, Ranjiangshang
Arratia, Paulo E.
contents We investigate the effects of bacterial activity on the mixing and transport properties of a passive scalar in time-periodic flows in experiments and in a simple model. We focus on the interactions between swimming E. coli and the Lagrangian Coherent Structures (LCSs) of the flow, which are computed from experimentally measured velocity fields. Experiments show that such interactions are non-trivial and can lead to transport barriers through which the scalar flux is significantly reduced. Using the Poincaré map, we show that these transport barriers coincide with the outermost members of elliptic LCSs known as Lagrangian vortex boundaries. Numerical simulations further show that elliptic LCSs can repel elongated swimmers and lead to swimmer depletion within Lagrangian coherent vortices. A simple mechanism shows that such depletion is due to the preferential alignment of elongated swimmers with the tangents of elliptic LCSs. Our results provide insights into understanding the transport of microorganisms in complex flows with dynamical topological features from a Lagrangian viewpoint.
format Preprint
id arxiv_https___arxiv_org_abs_2312_14284
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Enhancing Transport Barriers with Swimming Microorganisms in Chaotic Flows
Ran, Ranjiangshang
Arratia, Paulo E.
Fluid Dynamics
Soft Condensed Matter
Chaotic Dynamics
Biological Physics
We investigate the effects of bacterial activity on the mixing and transport properties of a passive scalar in time-periodic flows in experiments and in a simple model. We focus on the interactions between swimming E. coli and the Lagrangian Coherent Structures (LCSs) of the flow, which are computed from experimentally measured velocity fields. Experiments show that such interactions are non-trivial and can lead to transport barriers through which the scalar flux is significantly reduced. Using the Poincaré map, we show that these transport barriers coincide with the outermost members of elliptic LCSs known as Lagrangian vortex boundaries. Numerical simulations further show that elliptic LCSs can repel elongated swimmers and lead to swimmer depletion within Lagrangian coherent vortices. A simple mechanism shows that such depletion is due to the preferential alignment of elongated swimmers with the tangents of elliptic LCSs. Our results provide insights into understanding the transport of microorganisms in complex flows with dynamical topological features from a Lagrangian viewpoint.
title Enhancing Transport Barriers with Swimming Microorganisms in Chaotic Flows
topic Fluid Dynamics
Soft Condensed Matter
Chaotic Dynamics
Biological Physics
url https://arxiv.org/abs/2312.14284