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Storage of CO2 in geological formations depends on a combination of physical and chemical mechanisms such as physical trapping below caprocks or trapping by dissolution in groundwater. The most effective storage mechanism is the permanent mineralisation of CO2 by conversion into carbonate minerals (Benson et al. , 2005).
A major aim of reactive flow models in CCS activities is to understand and predict the evolution of the CO2 plume injected in the reservoir for planning and monitoring purposes (e. g. Jenkins et al. , 2015).
The geological storage of CO2 is a promising means to help reduce the emissions of greenhouse gases into the atmosphere during the energy transition stages (e. g. , Raza et al. , 2022).
Understanding how geological, chemical, and physical processes interactions control the CO2 plume evolution for reservoir and license monitoring
Analysis of plausible scenarios for CO2 migration in overburden formations to evaluate the risks of surface emissions location and timing
Geochemical modelling to investigate and forecast CO2 trapping mechanisms on a large range of spatial and temporal scales
Reactive flow modelling to plan reservoir injection activities
Understanding how geological, chemical, and physical processes interactions control the CO2 plume evolution for reservoir and license monitoring
Analysis of plausible scenarios for CO2 migration in overburden formations to evaluate the risks of surface emissions location and timing
Geochemical modelling to investigate and forecast CO2 trapping mechanisms on a large range of spatial and temporal scales
Reactive flow modelling to plan reservoir injection activities
What we do
Consultancy
Reactive fluid flow modelling at reservoir to basin-scale for reservoir monitoring, leakage risk assessments and optimization of Measurement, Monitoring and Verification
Research & Innovation
Our R&D project to develop a novel sophisticated customizable multiphysics, multiphase, non-isothermal reactive flow model (“CO2MIG”) is open to industry partnerships
Strategic Collaborations
Our collaborations include academics from MARUM and Geomar (Germany) and the Net4CO2 hub for promotion of CCS in Portugal
Links to environmental monitoring
Our R&D on subsurface CO2 migration modelling complements research within IGI on environmental monitoring