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Front propagation in a regular vortex lattice: Dependence on the vortex structure. | LitMetric

Front propagation in a regular vortex lattice: Dependence on the vortex structure.

Phys Rev E

Aix Marseille Univ, CNRS, Centrale Marseille, IRPHE, Marseille, France.

Published: November 2017

AI Article Synopsis

  • This study explores how vortex structures affect the movement of fronts in stirred flows, using both experimental and numerical methods.
  • It finds that in extended vortex lattices with free boundary conditions, the shape of vortices doesn’t significantly influence front speed.
  • However, in vortex chains with rigid boundaries, slight changes in vortex shape can noticeably slow down the front velocity, highlighting the complex relationship between vortex structures and flow dynamics in large-scale front propagation.

Article Abstract

We investigate the dependence on the vortex structure of the propagation of fronts in stirred flows. For this, we consider a regular set of vortices whose structure is changed by varying both their boundary conditions and their aspect ratios. These configurations are investigated experimentally in autocatalytic solutions stirred by electroconvective flows and numerically from kinematic simulations based on the determination of the dominant Fourier mode of the vortex stream function in each of them. For free lateral boundary conditions, i.e., in an extended vortex lattice, it is found that both the flow structure and the front propagation negligibly depend on vortex aspect ratios. For rigid lateral boundary conditions, i.e., in a vortex chain, vortices involve a slight dependence on their aspect ratios which surprisingly yields a noticeable decrease of the enhancement of front velocity by flow advection. These different behaviors reveal a sensitivity of the mean front velocity on the flow subscales. It emphasizes the intrinsic multiscale nature of front propagation in stirred flows and the need to take into account not only the intensity of vortex flows but also their inner structure to determine front propagation at a large scale. Differences between experiments and simulations suggest the occurrence of secondary flows in vortex chains at large velocity and large aspect ratios.

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Source
http://dx.doi.org/10.1103/PhysRevE.96.053109DOI Listing

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