Outcrop-constrained hydrogeological simulations of brine reflux and early dolomitization of the Permian San Andres Formation
Гидрогеологические моделирования, ограниченные выходами на поверхность, рециркуляции рассолов и ранней доломитизации пермской формации Сан-Андрес
2012-08-20
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San Andres Formationbrine refluxearly dolomitizationmagnesium mass balancesequence-stratigraphic constraints
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Abstract (AI)
Abstract Our hydrogeologic model tests the effectiveness of brine reflux as the mechanism for early dolomitization of the Permian San Andres Formation. Brine circulation is constrained by sequence-stratigraphic parameters and a heterogeneous distribution of petrophysical properties based on outcrop data. The model simulates accumulation of the San Andres platform and calculates fluid flow and solute transport in response to relative sea level fluctuations. It tracks porosity loss caused by compaction and the concomitant permeability feedback. The amount of dolomite potentially formed is calculated by means of a magnesium mass balance between brine and rock. Results show that (1) brine reflux is an effective mechanism to deliver magnesium to dolomitize large carbonate successions; (2) relative sea level–controlled transient boundary conditions result in intricate flow and salinity patterns that can generate irregular dolomite bodies with complex spatial distributions; (3) pervasive dolomitization can result from several short-lived reflux events by the amalgamation of brine plumes sourced in different locations and times; and (4) the model successfully recreates the dolostone and limestone patterns observed in San Andres outcrops.
Key Findings
1
Brine reflux effectively delivers magnesium sufficient to dolomitize large carbonate successions in the Permian San Andres Formation.
2
Including porosity loss from compaction and permeability feedbacks allows the model to simulate fluid flow and solute transport realistically during platform accumulation.
3
Sequence-stratigraphic, relative sea level–controlled transient boundary conditions produce intricate flow and salinity patterns that generate irregular, complexly distributed dolomite bodies.
4
Several short-lived reflux events can amalgamate brine plumes from different locations and times, producing pervasive dolomitization.
5
The model reproduces the observed spatial patterns of dolostone and limestone in San Andres outcrops, validating the outcrop-constrained simulation approach.
Research Object
Permian San Andres Formation carbonate platform (modeled as an outcrop-constrained hydrogeologic system)
Research Subject
Brine reflux-driven fluid flow, solute (Mg) transport, porosity–permeability evolution, and resulting early dolomitization patterns under sequence-stratigraphic and sea-level–controlled boundary conditions
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2012-08-20
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