Cellular automaton model of precipitation/dissolution coupled with solute transport
T. Karapiperis
Abstract
Precipitation/dissolution reactions coupled with solute transport are modelled as a cellular automaton in which solute molecules perform a random walk on a regular lattice and react according to a local probabilistic rule. Stationary solid particles dissolve with a certain probability and, provided solid is already present or the solution is saturated, solute particles have a probability to precipitate. In our simulation of the dissolution of a solid block inside uniformly flowing water we obtain solid precipitation downstream from the original solid edge, in contrast to the standard reaction-transport equations. The observed effect is the result of fluctuations in solute density and diminishes when we average over a larger ensemble. The additional precipitation of solid is accompanied by a substantial reduction in the relatively small solute concentration. The model is appropriate for the study of the r\ole of intrinsic fluctuations in the presence of reaction thresholds and can be employed to investigate porosity changes associated with the carbonation of cement.
Create a lesson
Related papers
A new discrete velocity method for Navier-Stokes equations
Michael Junk, S. V. Raghurama Rao
Construction of Molecular Dynamics Like Cellular Automata Models for Simulation of Compressible Fluid Dynamic Systems
Himanshu Agrawal
Lattice Gases and Cellular Automata
Bruce M. Boghosian
Cellular Automaton Rule184++C. A Simple Model for the Complex Dynamics of Various Particles Flow
A. Awazu
Exact results for deterministic cellular automata traffic models
Henryk Fuks
Crystalline Computation
Norman Margolus