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Published on: February 21, 2017
Sinking CO2 in Supercritical Reservoirs
Francesco Parisio1, Victor Vilarrasa2,3,4
1Chair of Soil Mechanics and Foundation Engineering, Institute of Geotechnics Technische Universität Bergakademie Freiberg Freiberg Germany.
Storing carbon dioxide (CO2) in supercritical reservoirs, found in volcanic regions, offers a novel solution to reduce leakage risks associated with traditional geologic carbon storage. This method leverages high pressure and temperature to increase CO2 density, enhancing storage efficiency.
Area of Science:
- Earth Sciences
- Environmental Science
- Geology
Background:
- Geologic carbon storage is crucial for mitigating the climate crisis through negative CO2 emissions.
- Traditional CO2 injection occurs below 800m, but CO2's lower density than brine causes buoyancy-driven leakage, hindering deployment.
- The risk of CO2 escaping geological formations challenges the long-term effectiveness of conventional carbon sequestration.
Purpose of the Study:
- To propose and evaluate supercritical reservoirs as an alternative for geologic carbon storage.
- To address the challenge of buoyancy-driven CO2 leakage in conventional storage methods.
- To explore a new approach for safe and efficient carbon sequestration.
Main Methods:
- Investigated CO2 storage in supercritical reservoirs characterized by high pressure (>21.8 MPa) and temperature (>374°C).
- Focused on volcanic areas where these conditions are met at drilling-reachable depths.
- Analyzed the density of CO2 under supercritical conditions relative to resident brine.
Main Results:
- Supercritical CO2 is denser than water under specific reservoir conditions, mitigating upward migration.
- Supercritical reservoirs offer a storage capacity estimated between 50-500 Mt yr^-1 per 100 injection wells.
- This method significantly reduces the risk of buoyancy-driven leakage compared to traditional approaches.
Conclusions:
- Storing CO2 in supercritical reservoirs presents a viable and appealing alternative to conventional geologic carbon storage.
- This innovative approach enhances the safety and efficiency of carbon sequestration strategies.
- Further research and development in supercritical reservoir utilization are warranted for climate change mitigation.
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