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CO 2 /brine/rock interactions in Lower Tuscaloosa formation
Author(s) -
Soong Yee,
Howard Bret H.,
Dilmore Robert M.,
Haljasmaa Igor,
Crandall Dustin M.,
Zhang Liwei,
Zhang Wu,
Lin Ronghong,
Irdi Gino A.,
Romanov Vyacheslav N.,
Mclendon Thomas R.
Publication year - 2016
Publication title -
greenhouse gases: science and technology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.45
H-Index - 32
ISSN - 2152-3878
DOI - 10.1002/ghg.1611
Subject(s) - brine , petrography , geology , permeability (electromagnetism) , mineralogy , core sample , porosity , plume , scanning electron microscope , enhanced oil recovery , geochemistry , chemistry , petroleum engineering , geotechnical engineering , core (optical fiber) , materials science , composite material , biochemistry , physics , organic chemistry , membrane , thermodynamics
Abstract Saline aquifers are the largest potential continental geologic CO 2 sequestration resource. Understanding of potential geochemically induced changes to the porosity and permeability of host CO 2 storage and sealing formation rock will improve our ability to predict CO 2 plume dynamics, storage capacity, and long‐term reservoir behavior. Experiments exploring geochemical interactions of CO 2 /brine/rock on saline formations under CO 2 sequestration conditions were conducted in a static system. Chemical interactions in core samples from the Lower Tuscaloosa formation from Jackson County, Mississippi, with exposure to CO 2 ‐saturated brine under sequestration conditions were studied through six months of batch exposure. The experimental conditions to which the core samples of Lower Tuscaloosa sandstone and Selma chalk were exposed to a temperature of 85°C, CO 2 pressure of 23.8 MPa (3500 psig), while immersed in a model brine representative of Tuscaloosa Basin. Computed tomography (CT), X‐Ray diffraction (XRD), Scanning Electron Microscopy (SEM), brine chemistry, and petrography analyses were performed before and after the exposure. Permeability measurements from the sandstone core sample before and after exposure showed a permeability reduction. No significant change of the permeability measurements was noticed for the core sample obtained from Selma chalk after it was exposed to CO 2 /brine for six months. These results have implications for performance of the storage interval, and the integrity of the seal in a CO 2 storage setting. © 2016 Society of Chemical Industry and John Wiley & Sons, Ltd

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