Affiliation:
1. PoreLab, Department of Geoscience and Petroleum, Norwegian University of Science and Technology, NTNU, 7031 Trondheim, Norway
Abstract
Traditional investigations of fluid flow in porous media often rely on a continuum approach, but this method has limitations as it does not account for microscale details. However, recent progress in imaging technology allows us to visualize structures within the porous medium directly. This capability provides a means to confirm and validate continuum relationships. In this study, we present a detailed analysis of the dissolution trapping dynamics that take place when supercritical CO2 (scCO2) is injected into a heterogeneous porous medium saturated with brine. We present simulations based on the volume-of-fluid (VOF) method to model the combined behavior of two-phase fluid flow and mass transfer at the pore scale. These simulations are designed to capture the dynamic dissolution of scCO2 in a brine solution. Based on our simulation results, we have revised the Sherwood correlations: We expanded the correlation between Sherwood and Peclet numbers, revealing how the mobility ratio affects the equation. The expanded correlation gave improved correlations built on the underlying displacement patterns at different mobility ratios. Further, we analyzed the relationship between the Sherwood number, which is based on the Reynolds number, and the Schmidt number. Our regression on free parameters yielded constants similar to those previously reported. Our mass transfer model was compared to experimental models in the literature, showing good agreement for interfacial mass transfer of CO2 into water. The results of this study provide new perspectives on the application of non-dimensional numbers in large-scale (field-scale) applications, with implications for continuum scale modeling, e.g., in the field of geological storage of CO2 in saline aquifers.
Funder
Research Council of Norway
Reference61 articles.
1. Imaging and image-based fluid transport modeling at the pore scale in geological materials: A practical introduction to the current state-of-the-art;Bultreys;Earth-Sci. Rev.,2016
2. Xiong, T., Chen, M., Jin, Y., Zhang, W., Shao, H., Wang, G., Long, E., and Long, W. (2023). A New Multi-Scale Method to Evaluate the Porosity and MICP Curve for Digital Rock of Complex Reservoir. Energies, 16.
3. In-situ determination of field-scale NAPL mass transfer coefficients: Performance, simulation and analysis;Mobile;J. Contam. Hydrol.,2016
4. Multiphase Flow Modelling in Multiscale Porous Media: An Open-Sourced Micro-Continuum Approach;Carrillo;J. Comput. Phys. X,2020
5. Pore-scale simulation of fluid flow and solute dispersion in three-dimensional porous media;Icardi;Phys. Rev. E,2014