Buckling of scroll waves
arXiv:1205.5243 · doi:10.1103/PhysRevLett.109.174102
Abstract
A scroll wave in a sufficiently thin layer of an excitable medium with negative filament tension can be stable nevertheless due to filament rigidity. Above a certain critical thickness of the medium, such scroll wave will have a tendency to deform into a buckled, precessing state. Experimentally this will be seen as meandering of the spiral wave on the surface, the amplitude of which grows with the thickness of the layer, until a break-up to scroll wave turbulence happens. We present a simplified theory for this phenomenon and illustrate it with numerical examples.
4 pages main text + 5 pages appendix, 4+2 figures and a movie, as accepted by Phys Rev Letters 2012/09/24
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- A response function framework for the dynamics of meandering or large-core spiral waves and modulated traveling waves
- Filament tension and phase-locked drift of meandering scroll waves
- Scroll Waves and Filaments in excitable Media of higher spatial Dimension