journal article Mar 15, 2020

The effect of site characterization data on injection capacity and cap rock integrity modeling during carbon dioxide storage in the Nisku saline aquifer at the Wabamun Lake area, Canada

View at Publisher Save 10.1306/eg.06201919005
Abstract
ABSTRACT
Geological storage of CO2 is an option for mitigating global climate change resulting from greenhouse gas emissions. Effective selection, design, and operation of storage sites require reliable models for predicting the response to CO2 injection. This paper revisits preliminary studies of CO2 storage in the Nisku saline aquifer in Alberta, Canada, which were conducted to assess CO2 injectivity, plume migration, and geomechanical response during 50 yr of injection, using model input parameters estimated from data available at the time. The new work presented here involved modeling of CO2 injection using the same tools but with input parameters obtained from data acquired in an evaluation well. The first series of new simulations modeled fluid flow using a commercial black-oil simulator and predicted a lower maximum injection rate (0.80 million t [Mt]/yr [0.88 million tons (Mtons)/yr] compared to 1.0 Mt/yr [1.1 Mtons/yr]) but a CO2 plume width nearly identical with the preliminary prediction (as a consequence of increases in some parameters that offset decreases in other parameters). The second series of new simulations was undertaken using a coupled thermo–hydro–mechanical simulator and predicted ground surface uplift approximately four times less than the preliminary study and (when injecting above the fracture pressure) fracture dimensions several times greater. As before, thermal effects resulting from cool CO2 injection were observed to promote lateral fracture growth in the aquifer and reduce (but not prevent) vertical growth into the cap rock. Use of the evaluation well data in this study enabled a more confident conclusion that injection above the fracturing pressure is not feasible for this site.
Topics

No keywords indexed for this article. Browse by subject →

References
29
[1]
Bell "In situ stress magnitude and orientations estimates for Cretaceous coal-bearing strata beneath the plains area of central and southern Alberta" Bulletin of Canadian Petroleum Geology (2003) 10.2113/gscpgbull.51.1.1
[2]
Bennion, B., and S.Bachu, 2005, Relative permeability characteristics for supercritical CO2 displacing water in a variety of potential sequestration zones: SPE Annual Technical Conference and Exhibition, Dallas, Texas, October 9–12, 2005, SPE-95547-MS, 15 p., doi:10.2118/95547-MS. 10.2118/95547-ms
[3]
Cavanagh "The Sleipner storage site: Capillary flow modeling of a layered CO2 plume requires fractured shale barriers within the Utsira Formation" International Journal of Greenhouse Gas Control (2014) 10.1016/j.ijggc.2013.11.017
[4]
CGG , 2019, Geosim, accessed April 1, 2019, https://www.cgg.com/en/What-We-Do/GeoConsulting/Engineering-and-Economics/Geosim.
[5]
Chiaramonte "Fracture characterization and fluid flow simulation with geomechanical constraints for a CO2-EOR and sequestration project Teapot Dome Oil Field, Wyoming, USA" Energy Procedia (2011) 10.1016/j.egypro.2011.02.337
[6]
Computer Modelling Group (2008)
[7]
Dejam "Diffusive leakage of brine from aquifers during CO2 geological storage" Advances in Water Resources (2018) 10.1016/j.advwatres.2017.10.029
[8]
Dejam "The role of natural fractures of finite double-porosity aquifers on diffusive leakage of brine during geological storage of CO2" International Journal of Greenhouse Gas Control (2018) 10.1016/j.ijggc.2018.08.007
[9]
Ghaderi "Feasibility of injecting large volumes of CO2 into aquifers" Energy Procedia (2009) 10.1016/j.egypro.2009.02.092
[10]
Ghaderi "Reservoir modeling for Wabamun Lake Sequestration Project" Energy Science & Engineering (2015) 10.1002/ese3.60
[11]
Goodarzi "Geomechanical modeling for CO2 storage in Nisku aquifer in Wabamun Lake area in Canada" International Journal of Greenhouse Gas Control (2012) 10.1016/j.ijggc.2012.05.020
[12]
Goodarzi "Optimization of a CO2 storage project based on thermal, geomechanical and induced fracturing effects" Journal of Petroleum Science Engineering (2015) 10.1016/j.petrol.2015.06.004
[13]
Hassanzadeh "Predicting PVT data for CO2–brine mixtures for black-oil simulation of CO2 geological storage" International Journal of Greenhouse Gas Control (2008) 10.1016/s1750-5836(07)00010-2
[14]
Jiang "Numerical modeling of the Aquistore CO2 storage project" Energy Procedia (2016) 10.1016/j.egypro.2017.03.1630
[15]
Khattri "Simulation of long-term fate of CO2 in the sand of Utsira" Journal of Porous Media (2011) 10.1615/jpormedia.v14.i2.40
[16]
Khazaei "A reservoir–Geomechanical model to study the likelihood of tensile and shear failure in the caprock of Weyburn CCS project with regard to interpretation of microseismic data" Geotechnical and Geological Engineering (2017) 10.1007/s10706-017-0262-4
[17]
Li, B., and R. C. K.Wong, 2014, Thermo-poro-elastic properties of Nisku reservoir rock: Carbon Management Canada Annual Conference, Banff, Alberta, Canada, May 27–29, 2014.
[18]
Mehmood (2018)
[19]
Nur "An exact effective stress law for elastic deformation of rock with fluids" Journal of Geophysical Research (1971) 10.1029/jb076i026p06414
[20]
Nygaard, R. , 2010, Geomechanical analysis: Wabamun Area CO2 Sequestration Project (WASP): Calgary, Alberta, Canada, Energy and Environmental Systems Group, Institute for Sustainable Energy, Environment and Economy, 14 p., accessed November 1, 2012, http://www.ucalgary.ca/wasp/Geomechanical%20Analysis.pdf.
[21]
Coupled reservoir-geomechanical analysis of CO2 injection and ground deformations at In Salah, Algeria

Jonny Rutqvist, Donald W. Vasco, Larry Myer

International Journal of Greenhouse Gas Control 2010 10.1016/j.ijggc.2009.10.017
[22]
Settari "A new general model of fluid loss in hydraulic fracturing" SPE Journal (1985)
[23]
Settari "Numerical techniques used for predicting subsidence due to gas extraction in the North Adriatic sea" Petroleum Science and Technology (2008) 10.1080/10916460701833889
[24]
Soltanian "Multicomponent reactive transport of carbon dioxide in fluvial heterogeneous aquifers" Journal of Natural Gas Science and Engineering (2019) 10.1016/j.jngse.2019.03.011
[25]
TerraTek (2011)
[26]
TransAlta Corporation, 2013, Final report of Project Pioneer, accessed April 1, 2019, http://www.transalta.com/sites/default/files/Project%20Pioneer_Final%20Report_Executive%20Summary_2013.pdf.
[27]
United Nations Framework Convention on Climate Change (2015)
[28]
Williams "Some thoughts on Darcy-type flow simulation for modelling underground CO2 storage, based on the Sleipner CO2 storage operation" International Journal of Greenhouse Gas Control (2018) 10.1016/j.ijggc.2017.11.010
[29]
Xu "TOUGHREACT–A simulation program for non-isothermal multiphase reactive geochemical transport in variably saturated geologic media: Applications to geothermal injectivity and CO2 geological sequestration" Computers & Geosciences (2006) 10.1016/j.cageo.2005.06.014