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Simulation of geochemical banding: Theoretical modeling and fractal structure in acidization-diffusion-precipitation dynamics

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dc.contributor.author Al-Ghoul, Mazen
dc.contributor.author Sultan, Rabih F.
dc.date.accessioned 2025-01-24T11:22:00Z
dc.date.available 2025-01-24T11:22:00Z
dc.date.issued 2019
dc.identifier.uri http://hdl.handle.net/10938/25403
dc.description.abstract In an earlier work, we presented an experimental study wherein reaction-transport processes were forged in a real rock medium. Zonation of CaSO4-rich and CaSO4-depleted domains were obtained and characterized. In the present study, we present a theoretical model to simulate the reaction-diffusion processes underlying the dynamics of the system. An H2SO4-acidization front propagating radially from a central source into a CaCO3 rock bed causes dissolution of the calcite mineral and precipitation of CaSO4 as either gypsum (CaSO4·2H2O) or anhydrite (anhydrous CaSO4). The deposition of CaSO4 is shown to exhibit a banded texture (irregular concentric rings in two dimensions). The model involves reaction-diffusion evolution equations for three aqueous species (H+, Ca2+, and SO42-), the CaCO3 dissolution, and the deposition of CaSO4, which is taken to obey a scaled Cahn-Hilliard equation. The output captures the zonation observed experimentally. Fractal analysis of the experimental contour shapes of the deposits reveals an oscillation in the fractal dimension over successive band numbers. Such oscillation is interpreted in terms of the precipitation-depletion tug scenario, not observable in regular two-dimensional Liesegang systems with high circular symmetry. ©2019 American Physical Society.
dc.language.iso en
dc.publisher American Physical Society
dc.relation.ispartof Physical Review E
dc.source Scopus
dc.subject Acidization
dc.subject Calcite
dc.subject Calcium carbonate
dc.subject Deposition
dc.subject Diffusion in liquids
dc.subject Dissolution
dc.subject Textures
dc.subject Cahn-hilliard equation
dc.subject Circular symmetry
dc.subject Evolution equations
dc.subject Fractal structures
dc.subject Reaction diffusion
dc.subject Reaction transport
dc.subject Reaction-diffusion process
dc.subject Theoretical modeling
dc.subject Fractal dimension
dc.title Simulation of geochemical banding: Theoretical modeling and fractal structure in acidization-diffusion-precipitation dynamics
dc.type Article
dc.contributor.department Department of Chemistry
dc.contributor.faculty Faculty of Arts and Sciences (FAS)
dc.contributor.institution American University of Beirut
dc.identifier.doi https://doi.org/10.1103/PhysRevE.100.052214
dc.identifier.pmid 31870022
dc.identifier.eid 2-s2.0-85075579323


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