Drift instabilities in localised Faraday patterns

Fuente: arXiv
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Autores principales: Marín, Juan F., Ávila, Rafael Riveros, Coulibaly, Saliya, Taki, Majid, García-Ñustes, Mónica A.
Formato: Preprint
Publicado: 2021
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author Marín, Juan F.
Ávila, Rafael Riveros
Coulibaly, Saliya
Taki, Majid
García-Ñustes, Mónica A.
author_facet Marín, Juan F.
Ávila, Rafael Riveros
Coulibaly, Saliya
Taki, Majid
García-Ñustes, Mónica A.
contents Nature is intrinsically heterogeneous, and remarkable phenomena can only be observed in the presence of intrinsically nonlinear heterogeneities. Spontaneous pattern formation in nature has fascinated humankind for centuries, and the understanding of the underlying symmetry-breaking instabilities has been of longstanding scientific interest. In this article, we provide theoretical and experimental evidence that heterogeneities can generate convection (drift instabilities) in the amplitude of localised patterns. We derive a minimal theoretical model describing the growth of localised Faraday patterns under heterogeneous parametric drive, unveiling the presence of symmetry-breaking nonlinear gradients. The model reveals new dynamics in the phase of the underlying patterns, exhibiting convective instabilities when the system crosses a secondary bifurcation point. We discuss the impact of our results in the understanding of convective instabilities induced by heterogeneities in generic nonlinear extended systems far from equilibrium.
format Preprint
id arxiv_https___arxiv_org_abs_2112_03866
institution arXiv
publishDate 2021
record_format arxiv
spellingShingle Drift instabilities in localised Faraday patterns
Marín, Juan F.
Ávila, Rafael Riveros
Coulibaly, Saliya
Taki, Majid
García-Ñustes, Mónica A.
Pattern Formation and Solitons
Nature is intrinsically heterogeneous, and remarkable phenomena can only be observed in the presence of intrinsically nonlinear heterogeneities. Spontaneous pattern formation in nature has fascinated humankind for centuries, and the understanding of the underlying symmetry-breaking instabilities has been of longstanding scientific interest. In this article, we provide theoretical and experimental evidence that heterogeneities can generate convection (drift instabilities) in the amplitude of localised patterns. We derive a minimal theoretical model describing the growth of localised Faraday patterns under heterogeneous parametric drive, unveiling the presence of symmetry-breaking nonlinear gradients. The model reveals new dynamics in the phase of the underlying patterns, exhibiting convective instabilities when the system crosses a secondary bifurcation point. We discuss the impact of our results in the understanding of convective instabilities induced by heterogeneities in generic nonlinear extended systems far from equilibrium.
title Drift instabilities in localised Faraday patterns
topic Pattern Formation and Solitons
url https://arxiv.org/abs/2112.03866