Imperial College London

Dr Adriana Paluszny

Faculty of EngineeringDepartment of Earth Science & Engineering

Reader in Computational Geomechanics
 
 
 
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Contact

 

+44 (0)20 7594 7435apaluszn

 
 
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Location

 

RSM 2.48Royal School of MinesSouth Kensington Campus

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Summary

 

Publications

Citation

BibTex format

@article{Salimzadeh:2018:10.1016/j.ijggc.2018.04.013,
author = {Salimzadeh, S and Paluszny, Rodriguez A and Zimmerman, RW},
doi = {10.1016/j.ijggc.2018.04.013},
journal = {International Journal of Greenhouse Gas Control},
pages = {130--141},
title = {Effect of cold CO2 injection on fracture apertures and growth},
url = {http://dx.doi.org/10.1016/j.ijggc.2018.04.013},
volume = {74},
year = {2018}
}

RIS format (EndNote, RefMan)

TY  - JOUR
AB - The injection of cold CO2 is modelled in three dimensions using a two-stage coupled thermoporoelastic model, with the aim of evaluating changes in apertures and potential growth of fractures. Non-isothermal flow is considered within the fractures and the rock matrix, and the two flow domains are coupled through a mass transfer term. The numerical model has been developed using standard finite elements, with spatial discretisation achieved using the Galerkin method, and temporal discretisation using finite differences. A full-scale field case geometric model, based on the Goldeneye depleted hydrocarbon reservoir in the North Sea, is developed and used for simulations. The in situ faults are modelled discretely as discontinuous surfaces in a three-dimensional matrix, including basement, reservoir, caprock and overburden layers. The faults are assumed initially to be low-permeable faults, with the same permeability as the caprock. However, the simulations show that their apertures (and as a result, their permeabilities) vary due to the thermoporoelastic effects caused by the injection of the relatively cold CO2. The change in the fracture apertures is mainly due to thermal effects; the reservoir layer undergoes contractions due to the cooling, significantly increasing fault aperture in the region of the fault within the reservoir, whereas the fault aperture is reduced in regions within the caprock. Propagation of fractures under thermoporoelastic loading is investigated. Results show that the distance to the injection well, as well as spatial orientation of fractures with respect to the injection well, affect aperture evolution and potential growth of fractures. A sensitivity analysis is performed on the parameters affecting the fracture growth: minimum normal stress acting on the fracture plane, dip angle of the fracture, and the contact friction coefficient. It is found that low friction, low normal contact stress, or high in situ shear stress on the fracture surface
AU - Salimzadeh,S
AU - Paluszny,Rodriguez A
AU - Zimmerman,RW
DO - 10.1016/j.ijggc.2018.04.013
EP - 141
PY - 2018///
SN - 1750-5836
SP - 130
TI - Effect of cold CO2 injection on fracture apertures and growth
T2 - International Journal of Greenhouse Gas Control
UR - http://dx.doi.org/10.1016/j.ijggc.2018.04.013
UR - http://hdl.handle.net/10044/1/59060
VL - 74
ER -