Multiscale modelling of CO2-CH4 displacement in shale gas reservoirs
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Open Access
Type
ThesisThesis type
Doctor of PhilosophyAuthor/s
Wu, JianAbstract
Shale gas is becoming an increasingly important source in the global energy sector. Australia has
one of the largest shale gas reserves globally, but the exploration is still in the very early stages.
Shale reservoirs are characterised by small porosity and ultra-low permeability, ...
See moreShale gas is becoming an increasingly important source in the global energy sector. Australia has one of the largest shale gas reserves globally, but the exploration is still in the very early stages. Shale reservoirs are characterised by small porosity and ultra-low permeability, with gas production from natural fractures rapidly decaying over time. CO2 injection can potentially be utilised to recover adsorbed gas from the organic matrix and achieve carbon sequestration, known as CO2-enhanced gas recovery (CO2-EGR). As shale is mainly composed of nanopores, the gas flow and transport can significantly differ from that described by conventional theories. During CO2-CH4 displacement, shale can also deform in response to gas adsorption/desorption like many other nanoporous materials, which may affect gas permeability during production. This thesis revolves around the interaction between CO2 and CH4 in porous media at nano and micro scales using molecular dynamics (MD) and the lattice Boltzmann method (LBM).
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See moreShale gas is becoming an increasingly important source in the global energy sector. Australia has one of the largest shale gas reserves globally, but the exploration is still in the very early stages. Shale reservoirs are characterised by small porosity and ultra-low permeability, with gas production from natural fractures rapidly decaying over time. CO2 injection can potentially be utilised to recover adsorbed gas from the organic matrix and achieve carbon sequestration, known as CO2-enhanced gas recovery (CO2-EGR). As shale is mainly composed of nanopores, the gas flow and transport can significantly differ from that described by conventional theories. During CO2-CH4 displacement, shale can also deform in response to gas adsorption/desorption like many other nanoporous materials, which may affect gas permeability during production. This thesis revolves around the interaction between CO2 and CH4 in porous media at nano and micro scales using molecular dynamics (MD) and the lattice Boltzmann method (LBM).
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Date
2024Licence
Copyright All Rights ReservedRights statement
The author retains copyright of this thesis. It may only be used for the purposes of research and study. It must not be used for any other purposes and may not be transmitted or shared with others without prior permission.Faculty/School
Faculty of Engineering, School of Civil EngineeringAwarding institution
The University of SydneyShare