CO2‐Saturated Brine Injection Into Unconsolidated Sandstone: Implications for Carbon Geosequestration

©2019. American Geophysical Union. All Rights Reserved. Carbon dioxide (CO2) injection into deep depleted hydrocarbon reservoirs or saline aquifers is currently considered the best approach to large-scale CO2 storage. Importantly, the pore structure and permeability of the storage rock are affected...

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Main Authors: Yu, H., Zhang, Y., Ma, Y., Lebedev, Maxim, Ahmed, S., Li, X., Verrall, M., Squelch, Andrew, Iglauer, Stefan
Format: Journal Article
Language:English
Published: AMER GEOPHYSICAL UNION 2019
Subjects:
Online Access:http://hdl.handle.net/20.500.11937/79270
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author Yu, H.
Zhang, Y.
Ma, Y.
Lebedev, Maxim
Ahmed, S.
Li, X.
Verrall, M.
Squelch, Andrew
Iglauer, Stefan
author_facet Yu, H.
Zhang, Y.
Ma, Y.
Lebedev, Maxim
Ahmed, S.
Li, X.
Verrall, M.
Squelch, Andrew
Iglauer, Stefan
author_sort Yu, H.
building Curtin Institutional Repository
collection Online Access
description ©2019. American Geophysical Union. All Rights Reserved. Carbon dioxide (CO2) injection into deep depleted hydrocarbon reservoirs or saline aquifers is currently considered the best approach to large-scale CO2 storage. Importantly, the pore structure and permeability of the storage rock are affected by fines release, migration, and reattachment in the initial stage of CO2 injection, especially in unconsolidated sandstone reservoirs. It is thus necessary to better understand the pore structure changes and the associated permeability evolution during and after CO2 injection. We thus imaged an unconsolidated sandstone at reservoir conditions before and after CO2-saturated brine (“live brine”) injection in situ via X-ray microcomputed tomography to explore the effects of fines migration and mineral dissolution induced by CO2 injection. We found that in the examined sample, large pores dominated the total porosity, and porosity slightly increased after live-brine flooding. Moreover, and importantly, the pore structure changed significantly: large pores were further enlarged while small pores shrank or even disappeared. These structural changes in the tested sample were caused by mobilized fines due to the high-fluid interstitial velocity, which eventually reattached to the grains further downstream. Furthermore, the impact of the pore structural changes on permeability were analyzed in detail numerically. These permeability results are consistent with a fines migration mechanism where reattached fines block pore throats and thus decrease permeability drastically. We therefore can conclude that live brine injected into the examined unconsolidated sandstone will slightly improve storage space (porosity slightly increased); however, injectivity may be severely impaired by the permeability reduction.
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spelling curtin-20.500.11937-792702020-05-20T00:34:40Z CO2‐Saturated Brine Injection Into Unconsolidated Sandstone: Implications for Carbon Geosequestration Yu, H. Zhang, Y. Ma, Y. Lebedev, Maxim Ahmed, S. Li, X. Verrall, M. Squelch, Andrew Iglauer, Stefan Science & Technology Physical Sciences Geochemistry & Geophysics Greenland ice sheet snow and firn density regional climate models surface mass balance CO2 STORAGE EFFICIENCY ORDOS BASIN POROUS-MEDIA PERMEABILITY EVOLUTION REACTIVE TRANSPORT SUPERCRITICAL CO2 SALINE AQUIFERS FINES MIGRATION SURFACE-AREA FLUID-FLOW ©2019. American Geophysical Union. All Rights Reserved. Carbon dioxide (CO2) injection into deep depleted hydrocarbon reservoirs or saline aquifers is currently considered the best approach to large-scale CO2 storage. Importantly, the pore structure and permeability of the storage rock are affected by fines release, migration, and reattachment in the initial stage of CO2 injection, especially in unconsolidated sandstone reservoirs. It is thus necessary to better understand the pore structure changes and the associated permeability evolution during and after CO2 injection. We thus imaged an unconsolidated sandstone at reservoir conditions before and after CO2-saturated brine (“live brine”) injection in situ via X-ray microcomputed tomography to explore the effects of fines migration and mineral dissolution induced by CO2 injection. We found that in the examined sample, large pores dominated the total porosity, and porosity slightly increased after live-brine flooding. Moreover, and importantly, the pore structure changed significantly: large pores were further enlarged while small pores shrank or even disappeared. These structural changes in the tested sample were caused by mobilized fines due to the high-fluid interstitial velocity, which eventually reattached to the grains further downstream. Furthermore, the impact of the pore structural changes on permeability were analyzed in detail numerically. These permeability results are consistent with a fines migration mechanism where reattached fines block pore throats and thus decrease permeability drastically. We therefore can conclude that live brine injected into the examined unconsolidated sandstone will slightly improve storage space (porosity slightly increased); however, injectivity may be severely impaired by the permeability reduction. 2019 Journal Article http://hdl.handle.net/20.500.11937/79270 10.1029/2018JB017100 English AMER GEOPHYSICAL UNION fulltext
spellingShingle Science & Technology
Physical Sciences
Geochemistry & Geophysics
Greenland ice sheet
snow and firn density
regional climate models
surface mass balance
CO2 STORAGE EFFICIENCY
ORDOS BASIN
POROUS-MEDIA
PERMEABILITY EVOLUTION
REACTIVE TRANSPORT
SUPERCRITICAL CO2
SALINE AQUIFERS
FINES MIGRATION
SURFACE-AREA
FLUID-FLOW
Yu, H.
Zhang, Y.
Ma, Y.
Lebedev, Maxim
Ahmed, S.
Li, X.
Verrall, M.
Squelch, Andrew
Iglauer, Stefan
CO2‐Saturated Brine Injection Into Unconsolidated Sandstone: Implications for Carbon Geosequestration
title CO2‐Saturated Brine Injection Into Unconsolidated Sandstone: Implications for Carbon Geosequestration
title_full CO2‐Saturated Brine Injection Into Unconsolidated Sandstone: Implications for Carbon Geosequestration
title_fullStr CO2‐Saturated Brine Injection Into Unconsolidated Sandstone: Implications for Carbon Geosequestration
title_full_unstemmed CO2‐Saturated Brine Injection Into Unconsolidated Sandstone: Implications for Carbon Geosequestration
title_short CO2‐Saturated Brine Injection Into Unconsolidated Sandstone: Implications for Carbon Geosequestration
title_sort co2‐saturated brine injection into unconsolidated sandstone: implications for carbon geosequestration
topic Science & Technology
Physical Sciences
Geochemistry & Geophysics
Greenland ice sheet
snow and firn density
regional climate models
surface mass balance
CO2 STORAGE EFFICIENCY
ORDOS BASIN
POROUS-MEDIA
PERMEABILITY EVOLUTION
REACTIVE TRANSPORT
SUPERCRITICAL CO2
SALINE AQUIFERS
FINES MIGRATION
SURFACE-AREA
FLUID-FLOW
url http://hdl.handle.net/20.500.11937/79270