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Updated: May 23, 2026

Evolution of Staircase Structures in Diffusive Convection
Published on: September 5, 2018
Spatiotemporal chaos in the dynamics of buoyantly and diffusively unstable chemical fronts
M P M A Baroni1, E Guéron, A De Wit
1Centro de Matemática, Computação e Cognição, Universidade Federal do ABC, 09210-170 Santo André-SP, Brazil. mariana.baroni@gmail.com
Abstract:
Nonlinear dynamics resulting from the interplay between diffusive and buoyancy-driven Rayleigh-Taylor (RT) instabilities of autocatalytic traveling fronts are analyzed numerically for various values of the relevant parameters. These are the Rayleigh numbers of the reactant A and autocatalytic product B solutions as well as the ratio D=D(B)/D(A) between the diffusion coefficients of the two key chemical species. The interplay between the coarsening dynamics characteristic of the RT instability and the constant short wavelength modulation of the diffusive instability can lead in some regimes to complex dynamics dominated by irregular succession of birth and death of fingers. By using spectral entropy measurements, we characterize the transition between order and spatial disorder in this system. The analysis of the power spectrum and autocorrelation function, moreover, identifies similarities between the various spatial patterns. The contribution of the diffusive instability to the complex dynamics is discussed.
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