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Lagrangian coherent structures at the onset of hyperchaos in the two-dimensional Navier-Stokes equations

  • We study a transition to hyperchaos in the two-dimensional incompressible Navier-Stokes equations with periodic boundary conditions and an external forcing term. Bifurcation diagrams are constructed by varying the Reynolds number, and a transition to hyperchaos (HC) is identified. Before the onset of HC, there is coexistence of two chaotic attractors and a hyperchaotic saddle. After the transition to HC, the two chaotic attractors merge with the hyperchaotic saddle, generating random switching between chaos and hyperchaos, which is responsible for intermittent bursts in the time series of energy and enstrophy. The chaotic mixing properties of the flow are characterized by detecting Lagrangian coherent structures. After the transition to HC, the flow displays complex Lagrangian patterns and an increase in the level of Lagrangian chaoticity during the bursty periods that can be predicted statistically by the hyperchaotic saddle prior to HC transition.

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Author details:Rodrigo A. Miranda, Erico L. Rempel, Abraham C.-L. Chian, Norbert SeehaferORCiD, Benjamin A. Toledo, Pablo R. Munoz
DOI:https://doi.org/10.1063/1.4811297
ISSN:1054-1500
Title of parent work (English):Chaos : an interdisciplinary journal of nonlinear science
Publisher:American Institute of Physics
Place of publishing:Melville
Publication type:Article
Language:English
Year of first publication:2013
Publication year:2013
Release date:2017/03/26
Volume:23
Issue:3
Number of pages:13
Funding institution:CNPq; FAPESP; DPP/UnB; Marie Curie International Incoming Fellowship; FONDECyT [1130273]
Organizational units:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Physik und Astronomie
Peer review:Referiert
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