pith. sign in

arxiv: nlin/0212039 · v2 · submitted 2002-12-17 · 🌊 nlin.PS · nlin.CD

Front dynamics in reaction-diffusion systems with Levy flights: a fractional diffusion approach

classification 🌊 nlin.PS nlin.CD
keywords diffusionfractionallevyalphaanomalousdynamicsreaction-diffusionsystems
0
0 comments X
read the original abstract

The use of reaction-diffusion models rests on the key assumption that the underlying diffusive process is Gaussian. However, a growing number of studies have pointed out the prevalence of anomalous diffusion, and there is a need to understand the dynamics of reactive systems in the presence of this type of non-Gaussian diffusion. Here we present a study of front dynamics in reaction-diffusion systems where anomalous diffusion is due to the presence of asymmetric Levy flights. Our approach consists of replacing the Laplacian diffusion operator by a fractional diffusion operator, whose fundamental solutions are Levy $\alpha$-stable distributions. Numerical simulation of the fractional Fisher-Kolmogorov equation, and analytical arguments show that anomalous diffusion leads to the exponential acceleration of fronts and a universal power law decay, $x^{-\alpha}$, of the tail, where $\alpha$, the index of the Levy distribution, is the order of the fractional derivative.

This paper has not been read by Pith yet.

discussion (0)

Sign in with ORCID, Apple, or X to comment. Anyone can read and Pith papers without signing in.