A Novel Experimental Study on Density‐Driven Instability and Convective Dissolution in Porous Media. Issue 23 (30th November 2021)
- Record Type:
- Journal Article
- Title:
- A Novel Experimental Study on Density‐Driven Instability and Convective Dissolution in Porous Media. Issue 23 (30th November 2021)
- Main Title:
- A Novel Experimental Study on Density‐Driven Instability and Convective Dissolution in Porous Media
- Authors:
- Guo, Ruichang
Sun, Hanxing
Zhao, Qingqi
Li, Zihao
Liu, Yang
Chen, Cheng - Abstract:
- Abstract: Geological carbon dioxide (CO2 ) sequestration (GCS) in deep saline aquifers is a promising solution to mitigate the impact of anthropogenic CO2 emissions on global climate change. CO2 dissolved in formation water increases the solution density and can lead to miscible density‐driven downward convection, which significantly accelerates the dissolution trapping of injected CO2 . Experimental studies on miscible density‐driven convection have been limited. In the laboratory, we found an empirical linear correlation between reflected green light intensity and solute concentration, which enabled in situ measurements of solute concentrations in the spatial and temporal domains and consequently the mass flux across the top boundary of the porous medium. Using the novel experimental techniques, we determined the critical Rayleigh‐Darcy number and critical time scales for the onset of density‐driven instability and convective dissolution. This is the first study to determine these critical system parameters using laboratory experiments. Plain Language Summary: Long‐term storage of carbon dioxide (CO2 ) in geological formations, such as deep saline aquifers, is a promising solution to mitigate the impact of anthropogenic CO2 emissions on global climate change. CO2 dissolved in formation water increases the solution density and can lead to miscible density‐driven downward convection, which accelerates the dissolution of CO2 in formation water and thus improves the long‐termAbstract: Geological carbon dioxide (CO2 ) sequestration (GCS) in deep saline aquifers is a promising solution to mitigate the impact of anthropogenic CO2 emissions on global climate change. CO2 dissolved in formation water increases the solution density and can lead to miscible density‐driven downward convection, which significantly accelerates the dissolution trapping of injected CO2 . Experimental studies on miscible density‐driven convection have been limited. In the laboratory, we found an empirical linear correlation between reflected green light intensity and solute concentration, which enabled in situ measurements of solute concentrations in the spatial and temporal domains and consequently the mass flux across the top boundary of the porous medium. Using the novel experimental techniques, we determined the critical Rayleigh‐Darcy number and critical time scales for the onset of density‐driven instability and convective dissolution. This is the first study to determine these critical system parameters using laboratory experiments. Plain Language Summary: Long‐term storage of carbon dioxide (CO2 ) in geological formations, such as deep saline aquifers, is a promising solution to mitigate the impact of anthropogenic CO2 emissions on global climate change. CO2 dissolved in formation water increases the solution density and can lead to miscible density‐driven downward convection, which accelerates the dissolution of CO2 in formation water and thus improves the long‐term security of the system. However, investigations of the critical system parameter and critical time scales for triggering downward convection have relied heavily on numerical simulations because of the challenges associated with laboratory experiments. In this study, we used experimental methods to find an empirical linear correlation between reflected visible light intensity and solute concentration, which enabled in situ measurements of solute concentrations in the spatial and temporal domains. Using these novel experimental techniques, we determined the critical Rayleigh‐Darcy number and critical time scales for the onset of density‐driven instability and convective dissolution. The findings from this experimental study have practical applications in many other engineered and natural processes, such as geothermal convection, heat transfer due to subsurface nuclear waste disposal, and variable‐density groundwater flow. Key Points: Empirical linear correlation between reflected visible light intensity and in situ solute concentration Experimental determination of the critical Rayleigh‐Darcy number for the onset of density‐driven instability Experimental determination of the critical time scales for the onset of density‐driven instability and convective dissolution … (more)
- Is Part Of:
- Geophysical research letters. Volume 48:Issue 23(2021)
- Journal:
- Geophysical research letters
- Issue:
- Volume 48:Issue 23(2021)
- Issue Display:
- Volume 48, Issue 23 (2021)
- Year:
- 2021
- Volume:
- 48
- Issue:
- 23
- Issue Sort Value:
- 2021-0048-0023-0000
- Page Start:
- n/a
- Page End:
- n/a
- Publication Date:
- 2021-11-30
- Subjects:
- density‐driven instability -- convective dissolution -- Rayleigh‐Darcy number -- experimental study -- geological carbon sequestration
Geophysics -- Periodicals
Planets -- Periodicals
Lunar geology -- Periodicals
550 - Journal URLs:
- http://www.agu.org/journals/gl/ ↗
http://onlinelibrary.wiley.com/ ↗ - DOI:
- 10.1029/2021GL095619 ↗
- Languages:
- English
- ISSNs:
- 0094-8276
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 4156.900000
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 24652.xml