Pore‐Scale Modeling of Coupled CO2 Flow and Dissolution in 3D Porous Media for Geological Carbon Storage

Abstract Dissolution trapping is one of the crucial trapping mechanisms for geological carbon storage in deep saline aquifers. The injected supercritical CO2 (scCO2) flow and dissolution processes are coupled and interact with each other. Therefore, we performed direct numerical simulations in three...

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Main Authors: Yongfei Yang, Jinlei Wang, Jianzhong Wang, Yingwen Li, Hai Sun, Lei Zhang, Junjie Zhong, Kai Zhang, Jun Yao
Format: Article
Language:English
Published: Wiley 2023-10-01
Series:Water Resources Research
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Online Access:https://doi.org/10.1029/2023WR035402
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author Yongfei Yang
Jinlei Wang
Jianzhong Wang
Yingwen Li
Hai Sun
Lei Zhang
Junjie Zhong
Kai Zhang
Jun Yao
author_facet Yongfei Yang
Jinlei Wang
Jianzhong Wang
Yingwen Li
Hai Sun
Lei Zhang
Junjie Zhong
Kai Zhang
Jun Yao
author_sort Yongfei Yang
collection DOAJ
description Abstract Dissolution trapping is one of the crucial trapping mechanisms for geological carbon storage in deep saline aquifers. The injected supercritical CO2 (scCO2) flow and dissolution processes are coupled and interact with each other. Therefore, we performed direct numerical simulations in three‐dimensional micro‐CT images of sandstones using the volume of fluid and continuous species transfer method. We investigated the coupled scCO2 flow and dissolution processes at pore‐scale under different rock structures, capillary numbers, and rock wettability conditions. The dynamic evolution of the scCO2/brine phase distribution and scCO2 concentration distribution occurring during the injection period were presented and analyzed. Complicated coupling mechanisms between scCO2‐brine two‐phase flow and interphase mass transfer were also revealed. Our results showed that the scCO2 dissolution was highly dependent on the local distribution of scCO2 clusters. The rock with relatively high porosity and permeability would have more capacity for scCO2 injection resulting in a faster and greater dissolution of scCO2 in brine. The effect of capillary number on the scCO2 dissolution process was related to the range of capillary number. The effective upscaled (macro‐scale) mass transfer coefficient (kA) during scCO2 dissolution was evaluated, and the power‐law relationship between kA and Péclet number was obtained. Rock wettability was found to be another factor controlling the scCO2 dissolution process by affecting the scCO2‐brine interfacial area. Our pore‐scale study provides a deep understanding of the scCO2 dissolution trapping mechanism, which is important to enhance the prediction of sequestration risk and improve sequestration efficiency.
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spelling doaj-art-2fdb78550f8e47fdbe125ad5df9ed64f2025-08-20T02:35:08ZengWileyWater Resources Research0043-13971944-79732023-10-015910n/an/a10.1029/2023WR035402Pore‐Scale Modeling of Coupled CO2 Flow and Dissolution in 3D Porous Media for Geological Carbon StorageYongfei Yang0Jinlei Wang1Jianzhong Wang2Yingwen Li3Hai Sun4Lei Zhang5Junjie Zhong6Kai Zhang7Jun Yao8National Key Laboratory of Deep Oil and Gas China University of Petroleum (East China) Qingdao P. R. ChinaNational Key Laboratory of Deep Oil and Gas China University of Petroleum (East China) Qingdao P. R. ChinaNational Key Laboratory of Deep Oil and Gas China University of Petroleum (East China) Qingdao P. R. ChinaNational Key Laboratory of Deep Oil and Gas China University of Petroleum (East China) Qingdao P. R. ChinaNational Key Laboratory of Deep Oil and Gas China University of Petroleum (East China) Qingdao P. R. ChinaNational Key Laboratory of Deep Oil and Gas China University of Petroleum (East China) Qingdao P. R. ChinaNational Key Laboratory of Deep Oil and Gas China University of Petroleum (East China) Qingdao P. R. ChinaNational Key Laboratory of Deep Oil and Gas China University of Petroleum (East China) Qingdao P. R. ChinaNational Key Laboratory of Deep Oil and Gas China University of Petroleum (East China) Qingdao P. R. ChinaAbstract Dissolution trapping is one of the crucial trapping mechanisms for geological carbon storage in deep saline aquifers. The injected supercritical CO2 (scCO2) flow and dissolution processes are coupled and interact with each other. Therefore, we performed direct numerical simulations in three‐dimensional micro‐CT images of sandstones using the volume of fluid and continuous species transfer method. We investigated the coupled scCO2 flow and dissolution processes at pore‐scale under different rock structures, capillary numbers, and rock wettability conditions. The dynamic evolution of the scCO2/brine phase distribution and scCO2 concentration distribution occurring during the injection period were presented and analyzed. Complicated coupling mechanisms between scCO2‐brine two‐phase flow and interphase mass transfer were also revealed. Our results showed that the scCO2 dissolution was highly dependent on the local distribution of scCO2 clusters. The rock with relatively high porosity and permeability would have more capacity for scCO2 injection resulting in a faster and greater dissolution of scCO2 in brine. The effect of capillary number on the scCO2 dissolution process was related to the range of capillary number. The effective upscaled (macro‐scale) mass transfer coefficient (kA) during scCO2 dissolution was evaluated, and the power‐law relationship between kA and Péclet number was obtained. Rock wettability was found to be another factor controlling the scCO2 dissolution process by affecting the scCO2‐brine interfacial area. Our pore‐scale study provides a deep understanding of the scCO2 dissolution trapping mechanism, which is important to enhance the prediction of sequestration risk and improve sequestration efficiency.https://doi.org/10.1029/2023WR035402geological carbon storagepore‐scale modelingCO2 dissolutionmultiphase flowmass transfer
spellingShingle Yongfei Yang
Jinlei Wang
Jianzhong Wang
Yingwen Li
Hai Sun
Lei Zhang
Junjie Zhong
Kai Zhang
Jun Yao
Pore‐Scale Modeling of Coupled CO2 Flow and Dissolution in 3D Porous Media for Geological Carbon Storage
Water Resources Research
geological carbon storage
pore‐scale modeling
CO2 dissolution
multiphase flow
mass transfer
title Pore‐Scale Modeling of Coupled CO2 Flow and Dissolution in 3D Porous Media for Geological Carbon Storage
title_full Pore‐Scale Modeling of Coupled CO2 Flow and Dissolution in 3D Porous Media for Geological Carbon Storage
title_fullStr Pore‐Scale Modeling of Coupled CO2 Flow and Dissolution in 3D Porous Media for Geological Carbon Storage
title_full_unstemmed Pore‐Scale Modeling of Coupled CO2 Flow and Dissolution in 3D Porous Media for Geological Carbon Storage
title_short Pore‐Scale Modeling of Coupled CO2 Flow and Dissolution in 3D Porous Media for Geological Carbon Storage
title_sort pore scale modeling of coupled co2 flow and dissolution in 3d porous media for geological carbon storage
topic geological carbon storage
pore‐scale modeling
CO2 dissolution
multiphase flow
mass transfer
url https://doi.org/10.1029/2023WR035402
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