A dual-porosity reactive-transport model of off-axis hydrothermal systems
Abstract
We built a dual-porosity reactive-transport 2D numerical model of off-axis pillow basalt alteration. An "outer chamber" full of porous glassy material supports significant seawater flushing, and an "inner chamber", which represents the more crystalline interior of a pillow, supports diffusive alteration. Hydrothermal fluids in the two chambers interact, and the two chambers are coupled to 2D flows. In a few million years of low-temperature alteration, the dual-porosity model predicts progressive stages of alteration that have been observed in drilled crust. A single-porosity model, with all else being equal, does not predict alteration stages as well. The dual-chamber model also does a better job than the single-chamber model at predicting the types of minerals expected in off-axis environments. We validate the model's ability to reproduce observations by configuring it to represent a thoroughly-studied transect of the Juan de Fuca Ridge eastern flank.
- Publication:
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AGU Fall Meeting Abstracts
- Pub Date:
- December 2017
- Bibcode:
- 2017AGUFM.V11A0335F
- Keywords:
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- 1009 Geochemical modeling;
- GEOCHEMISTRY;
- 1032 Mid-oceanic ridge processes;
- GEOCHEMISTRY;
- 1034 Hydrothermal systems;
- GEOCHEMISTRY;
- 1832 Groundwater transport;
- HYDROLOGY