Nonlinear reactive systems viewed as Boolean dynamical systems
arXiv:cond-mat/0101378 · doi:10.1103/PhysRevE.63.041102
Abstract
We present a stochastic, time-discrete boolean model which mimics the mesoscopic dynamics of the desorption reactions and in a 1D lattice. In the continuous-time limit, we derive a hierarchy of dynamical equations for the subset of moments involving contiguous lattice sites. The solution of the hierarchy allows to compute the exact dynamics of the mean coverage for both microscopic and coarse-grained initial conditions, which turn out to be different from the mean field predictions. The evolution equations for the mean coverage and the second order moments are shown to be equivalent to those provided by a time-continuous Master equation. The important role of higher order fluctuations is brought out by the failure of a truncation scheme retaining only two-particle fluctuation correlations.
30 pages, 9 figures
Cited by in corpus (7)
- Transport properties of 1D disordered models: a novel approach
- Yard-Sale exchange on networks: Wealth sharing and wealth appropriation
- Resistance of a 1D random chain: Hamiltonian version of the transfer matrix approach
- On-lattice coalescence and annihilation of immobile reactants in loopless lattices and beyond
- Reactive dynamics on fractal sets: anomalous fluctuations and memory effects
- Dichotomy Results for Fixed-Point Existence Problems for Boolean Dynamical Systems
- Towards an efficient multiscale modeling of low-dimensional reactive systems: study of numerical closure procedures