Hydrothermal Dissolution of Deeply Buried Cambrian Dolomite Rocks and Porosity Generation: Integrated with Geological Studies and Reactive Transport Modeling in the Tarim Basin, China
Гидротермальное растворение глубоко залегающих кембрийских доломитов и образование пористости: интеграция геологических исследований и реактивно-транспортного моделирования в Басейне Тарим, Китай
2017-01-01
SCID: 54.1/g99adfr2
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burial dissolutionhydrothermal fluidsreactive transport modelingretrograde dissolutionvertical permeability
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Abstract (AI)
The burial dissolution of carbonate rocks has long been an interesting topic of reservoir geologists. Integrated with geological studies and reactive transport modeling, this study investigated the Cambrian dolomites that were buried at depths up to 8408 m and still preserved a large amount of unfilled dissolution vugs from the borehole TS1 in the northern Tarim Basin. Studies indicate that these vugs were formed in association with fault-channeled hydrothermal fluids from greater depth through “retrograde dissolution” as the fluid temperature dropped during upward migration. The reactive transport modeling results suggest an important control of the vertical permeability of wall-rock on fluid and temperature patterns which, in turn, would control the spatial distribution of dissolving-originated porosity. The hydrothermal dissolution mainly occurred in dolomite wall-rocks with higher vertical permeability (extensive development of tensional fractures and connected pore spaces), producing additional dissolved porosity there during deep burial. This study implicates the importance of multidisciplinary approaches for understanding the burial/hydrothermal dissolution of dolomite rocks and predicting favourable deep/ultradeep carbonate reservoirs.
Key Findings
1
Hydrothermal dissolution occurred mainly in dolomite wall-rocks with higher vertical permeability (tensional fractures and connected pore spaces), producing additional porosity during deep burial.
2
Integrated geological studies and reactive transport modeling are essential for predicting favorable deep and ultradeep carbonate reservoirs affected by burial/hydrothermal dissolution.
3
Reactive transport modeling shows vertical permeability of wall-rock controls fluid and temperature patterns that govern spatial distribution of dissolution-generated porosity.
4
Unfilled dissolution vugs preserved in Cambrian dolomites at depths up to 8408 m in borehole TS1 are linked to fault-channeled hydrothermal fluids.
5
Vugs formed via retrograde dissolution as hydrothermal fluid temperature decreased during upward migration.
Research Object
Deeply buried Cambrian dolomite rocks (borehole TS1, northern Tarim Basin) containing unfilled dissolution vugs
Research Subject
Hydrothermal (burial/retrograde) dissolution and resulting porosity generation controlled by fault-channeled fluid flow, temperature changes, and vertical wall-rock permeability as revealed by geological studies and reactive transport modeling
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2017-01-01
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