


| [135633] |
| Title: Measurement of Large Spiral and Target Waves in Chemical Reaction-Diffusion-Advection Systems: Turbulent Diffusion Enhances Pattern Formation. |
| Written by: A. von Kameke, F. Huhn, A. P. Muñuzuri, and V. Pérez-Muñuzuri |
| in: <em>Phys. Rev</em>. February (2013). |
| Volume: <strong>110</strong>. Number: |
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| DOI: 10.1103/PhysRevLett.110.088302 |
| URL: https://www.researchgate.net/publication/235893797_Measurement_of_Large_Spiral_and_Target_Waves_in_Chemical_Reaction-Diffusion-Advection_Systems_Turbulent_Diffusion_Enhances_Pattern_Formation |
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Abstract: In the absence of advection, reaction-diffusion systems are able to organize into spatiotemporal patterns, in particular spiral and target waves. Whenever advection is present that can be parametrized in terms of effective or turbulent diffusion D_{*}, these patterns should be attainable on a much greater, boosted length scale. However, so far, experimental evidence of these boosted patterns in a turbulent flow was lacking. Here, we report the first experimental observation of boosted target and spiral patterns in an excitable chemical reaction in a quasi-two-dimensional turbulent flow. The wave patterns observed are ?50 times larger than in the case of molecular diffusion only. We vary the turbulent diffusion coefficient D_{*} of the flow and find that the fundamental Fisher-Kolmogorov-Petrovsky-Piskunov equation, v_{f}?sqrt[D_{*}], for the asymptotic speed of a reactive wave remains valid. However, not all measures of the boosted wave scale with D_{*} as expected from molecular diffusion, since the wave fronts turn out to be highly filamentous.