Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Modeling CO2 Sequestration in Deep Saline Aquifers – Best Practices

View through CrossRef
Abstract Managing carbon emissions has become a major responsibility for the oil and gas industry in a drive to ensure sustainable energy and create a clean environment. Therefore, governments, research centers, IOC’s and NOC’s are actively adopting new guidelines and inventing new technologies to safely circulate carbons. In this paper, the process of modeling CO2 sequestration in a deep saline aquifer will be discussed. Carbon dioxide can be safely stored indefinitely in subsurface geological formations by four trapping mechanisms; structural, residual, soluble, and mineral trapping. These four trapping mechanisms can take hundreds or thousands of years to happen. Furthermore, the oil and gas industry standard recommend that any technology used to store CO2 needs to demonstrate a storage capacity of 1000 years with less than 0.1 per-cent leakage potential per year. Therefore, modelling such process should capture any existing trapping mechanism, even if it happens after several hundreds of years, to ensure long-term secure storage of the CO2. Using our in-house simulator "GigaPOWERS", many sequestration scenarios were conducted to come up with a recommended guideline to maximize the volume of CO2 trapped in deep saline aquifers. This study used a giant synthetic anticline model with a variation in geological properties. The residual and soluble trapping mechanisms were captured through relative permeability hysteresis and extended water PVT tables respectively. Injecting CO2 into water aquifers is a dynamic process where drainage and imbibition cycles are likely to happen. Such processes cause the CO2 to be trapped in the middle of the pores as an immobile phase, which can be a favorable phenomenon maximizing the security of CO2 sequestration. Since CO2 is soluble in water, when it contacts the water phase it will form a carbonated water that is denser than water itself and migrates downward in a phenomenon known as "CO2 fingering". The CO2 solubility in water depends mainly on the salinity and temperature which both need to be accurately captured in the simulation model. Depending on the long-term objective of the sequestration project, the development strategy can be altered to maximize the outcome using the detailed simulation model. In this paper, the simulation best practices for modeling CO2 sequestration for maximum secure long-term storage (1000+ years) are suggested. Carbon dioxide, CO2, sequestration in deep saline aquifers is a well-known method to reduce carbon emissions. However, there is very little published literature on the simulation best practices for modeling the CO2 sequestration process. Therefore, this paper will be a pioneer to guide the industry for accurate simulation of such process.
Title: Modeling CO2 Sequestration in Deep Saline Aquifers – Best Practices
Description:
Abstract Managing carbon emissions has become a major responsibility for the oil and gas industry in a drive to ensure sustainable energy and create a clean environment.
Therefore, governments, research centers, IOC’s and NOC’s are actively adopting new guidelines and inventing new technologies to safely circulate carbons.
In this paper, the process of modeling CO2 sequestration in a deep saline aquifer will be discussed.
Carbon dioxide can be safely stored indefinitely in subsurface geological formations by four trapping mechanisms; structural, residual, soluble, and mineral trapping.
These four trapping mechanisms can take hundreds or thousands of years to happen.
Furthermore, the oil and gas industry standard recommend that any technology used to store CO2 needs to demonstrate a storage capacity of 1000 years with less than 0.
1 per-cent leakage potential per year.
Therefore, modelling such process should capture any existing trapping mechanism, even if it happens after several hundreds of years, to ensure long-term secure storage of the CO2.
Using our in-house simulator "GigaPOWERS", many sequestration scenarios were conducted to come up with a recommended guideline to maximize the volume of CO2 trapped in deep saline aquifers.
This study used a giant synthetic anticline model with a variation in geological properties.
The residual and soluble trapping mechanisms were captured through relative permeability hysteresis and extended water PVT tables respectively.
Injecting CO2 into water aquifers is a dynamic process where drainage and imbibition cycles are likely to happen.
Such processes cause the CO2 to be trapped in the middle of the pores as an immobile phase, which can be a favorable phenomenon maximizing the security of CO2 sequestration.
Since CO2 is soluble in water, when it contacts the water phase it will form a carbonated water that is denser than water itself and migrates downward in a phenomenon known as "CO2 fingering".
The CO2 solubility in water depends mainly on the salinity and temperature which both need to be accurately captured in the simulation model.
Depending on the long-term objective of the sequestration project, the development strategy can be altered to maximize the outcome using the detailed simulation model.
In this paper, the simulation best practices for modeling CO2 sequestration for maximum secure long-term storage (1000+ years) are suggested.
Carbon dioxide, CO2, sequestration in deep saline aquifers is a well-known method to reduce carbon emissions.
However, there is very little published literature on the simulation best practices for modeling the CO2 sequestration process.
Therefore, this paper will be a pioneer to guide the industry for accurate simulation of such process.

Related Results

Analysis of CO2 Injectivity by Change of Pressure, Temperature, and CO2 Phase in Saline Aquifer
Analysis of CO2 Injectivity by Change of Pressure, Temperature, and CO2 Phase in Saline Aquifer
Abstract A "business-as-usual" approach to the increasing anthropogenic CO2 emissions would exacerbate the issues of climate change and global warming, which have de...
Effects of CO2 Density and Solubility on Storage Behavior in Saline Aquifers
Effects of CO2 Density and Solubility on Storage Behavior in Saline Aquifers
Abstract CO2 sequestration in deep saline aquifers is an essential and quick-remedial measure to reduce CO2 emissions to atmosphere. At conditions of 800 to 4000 met...
Solar fuels via two-step thermochemical redox cycles for power and fuel production
Solar fuels via two-step thermochemical redox cycles for power and fuel production
With the issue of the rise of anthropogenic CO2, global warming and rise of the primary energy demand, strong measures for the energy transition and the diversification with renewa...
Rapid Large-scale Trapping of CO2 via Dissolution in US Natural CO2 Reservoirs
Rapid Large-scale Trapping of CO2 via Dissolution in US Natural CO2 Reservoirs
Naturally occurring CO2 reservoirs across the USA are critical natural analogues of long-term CO2 storage in the subsurface over geological timescales and provide valuable insights...
Design And Operation Of The Levelland Unit CO2 Injection Facility
Design And Operation Of The Levelland Unit CO2 Injection Facility
Abstract The Levelland CO2 Facility provides CO2 storageand handling capacity for the five CO2 injection pilots located in the Levelland Unit. Facilities pilots l...
An Emerging CO2 Storage Option: CO2 Storage and By-Product Oil Recovery from Shale Oil Formations
An Emerging CO2 Storage Option: CO2 Storage and By-Product Oil Recovery from Shale Oil Formations
Recent studies, sponsored by the United States Energy Association (USEA) and prepared by Advanced Resources International, have identified an emerging CO2 storage option – injectin...
Appraising Carbon Geological-Storage Potential in Saline Aquifers Using Pressure-Transient Analysis
Appraising Carbon Geological-Storage Potential in Saline Aquifers Using Pressure-Transient Analysis
ABSTRACT Pressure transient analysis (PTA), as a powerful technique for CO2 injection data analysis, plays an essential role in assessing the CO2 storage performance...

Back to Top