Using Reservoir Geology and Petrographic Observations to Improve CO<sub>2</sub> Mineralization Estimates; Examples from the Johansen Formation, North Sea, Norway

Reservoir characterization specific to CO<sub>2</sub> storage is challenging due to the dynamic interplay of physical and chemical trapping mechanisms. The mineralization potential for CO<sub>2</sub> in a given siliciclastic sandstone aquifer is controlled by the mineralogy,...

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Bibliographic Details
Main Authors: Anja Sundal, Helge Hellevang
Format: Article
Language:English
Published: MDPI AG 2019-10-01
Series:Minerals
Subjects:
ccs
Online Access:https://www.mdpi.com/2075-163X/9/11/671
Description
Summary:Reservoir characterization specific to CO<sub>2</sub> storage is challenging due to the dynamic interplay of physical and chemical trapping mechanisms. The mineralization potential for CO<sub>2</sub> in a given siliciclastic sandstone aquifer is controlled by the mineralogy, the total reactive surface areas, and the prevailing reservoir conditions. Grain size, morphologies and mineral assemblages vary according to sedimentary facies and diagenetic imprint. The proposed workflow highlights how the input values for reactive mineral surface areas used in geochemical modelling may be parameterized as part of geological reservoir characterization. The key issue is to separate minerals both with respect to phase chemistry and morphology (i.e., grain size, shape, and occurrence), and focus on main reactants for sensitivity studies and total storage potentials. The Johansen Formation is the main reservoir unit in the new full-value chain CO<sub>2</sub> capture and storage (CCS) prospect in Norway, which was licenced for the storage of CO<sub>2</sub> as of 2019. The simulations show how reaction potentials vary in different sedimentary facies and for different mineral occurrences. Mineralization potentials are higher in fine-grained facies, where plagioclase and chlorite are the main cation donors for carbonatization. Reactivity decreases with higher relative fractions of ooidal clay and lithic fragments.
ISSN:2075-163X