Front propagation steered by a high-wavenumber modulation: Theory and experiments
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2020Metadata
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Alfaro Bittner, K.
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Front propagation steered by a high-wavenumber modulation: Theory and experiments
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Abstract
Homogeneously driven dynamical systems exhibit multistability. Depending on the initial conditions, fronts present a rich dynamical behavior
between equilibria. Qualitatively, this phenomenology is persistent under spatially modulated forcing. However, the understanding of
equilibria and front dynamics organization is not fully established. Here, we investigate these phenomena in the high-wavenumber limit.
Based on a model that describes the reorientation transition of a liquid crystal light valve with spatially modulated optical forcing and the
homogenization method, equilibria and fronts as a function of forcing parameters are studied. The forcing induces patterns coexisting with the
uniform state in regions where the system without forcing is monostable. The front dynamics is characterized theoretically and numerically.
Experimental results verify these phenomena and the law describing bistability, showing quite good agreement.
Patrocinador
Millennium Institute for Research in Optics
Comision Nacional de Investigacion Cientifica y Tecnologica (CONICYT)
CONICYT FONDECYT
1180903
CONICYT by Doctorado Nacional
2017-21171672
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Artículo de publicación ISI Artículo de publicación SCOPUS
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Chaos 30, 053138 (2020)
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