Stocktake Sale on now: wide range of books at up to 70% off!
Register      Login
Australian Energy Producers Journal Australian Energy Producers Journal Society
Journal of Australian Energy Producers
RESEARCH ARTICLE

Defining the geomechanical operating limits for subsurface CO2 storage

Simon Holford https://orcid.org/0000-0002-4524-8822 A * , Mojtaba Rajabi https://orcid.org/0000-0002-0114-3199 B , Scott Mildren C , Rosalind King A and Adam Bailey D
+ Author Affiliations
- Author Affiliations

A School of Physics, Chemistry and Earth Sciences, University of Adelaide, Adelaide, SA, Australia.

B School of the Environment, University of Queensland, Qld, Australia.

C Tech Limit Pty Ltd, Stirling, SA, Australia.

D Geoscience Australia, Canberra, ACT, Australia.




Simon Holford is South Australian State Chair of Petroleum Geoscience in the Discipline of Earth Sciences, University of Adelaide. Simon has published ~130 papers on the prospectivity and tectonics of rifted margins, petroleum geomechanics and magmatism in basins. Simon has a PhD from the University of Birmingham and a BSc(Hons) from Keele University.



Mojtaba Rajabi is an Australian Research Council Discovery Early Career Researcher Awards Senior Research Fellow at the School of the Environment, the University of Queensland. He has over 15 years of extensive experience in crustal stress analysis, geomechanics, geomechanical-numerical modelling and petrophysics. Mojtaba graduated with a PhD in Earth Sciences from the University of Adelaide in 2016. Since 2012, Dr Rajabi has worked on the Australian and World Stress Map projects, and he is currently the Deputy Head of the World Stress Map project.



A Geologist with over 25 years of experience in petroleum geomechanics, Scott Mildren founded JRS Petroleum Research after completing his PhD at the University of Adelaide in 1997 and subsequent Postdocs addressing fault seal and contemporary stress conditions in Brunei. JRS provided geomechanical and image log services across Australasia until it was acquired by Ikon Science in 2012. Scott oversaw the incorporation of geomechanical functionality into Ikon’s RokDoc software and was involved in developing integrated workflows that combined geomechanics, rock physics and seismic inversion for clients around the world. Scott left Ikon in 2020 to found a new company, Tech Limit, which is focussed on the development of their unique platform for building and implementing, repeatable, integrated workflows.



Rosalind King is an Associate Professor and Head of the Discipline of Earth Sciences, University of Adelaide. She graduated with a BSc(Hons) (2001) and a PhD (2006) from the University of Liverpool. Her research interests include structural geology, deepwater fold-thrust belts, detachments, fault and fracture mechanics, fault-controlled permeability and petroleum geomechanics.



Adam Bailey is a Petroleum Geoscientist at Geoscience Australia, with expertise in petroleum geomechanics, structural geology and basin analysis. He graduated with a BSc(Hons) in 2012 and a PhD in 2016 from the Australian School of Petroleum at the University of Adelaide. Adam is currently part of the Onshore Energy Systems team at Geoscience Australia, where he is currently working on the flagship Exploring for the Future Program.

* Correspondence to: simon.holford@adelaide.edu.au

Australian Energy Producers Journal 64 24-35 https://doi.org/10.1071/EP23126
Submitted: 15 December 2023  Accepted: 1 February 2024  Published: 16 May 2024

© 2024 The Author(s) (or their employer(s)). Published by CSIRO Publishing on behalf of Australian Energy Producers.

Abstract

Carbon capture and storage (CCS) is a critical component of proposed pathways to limit global warming, though considerable upscaling is required to meet emissions reduction targets. Quantifying and managing the risks of fault reactivation is a leading barrier to scaling global CCS projects from current levels of ~40 million tonnes of carbon dioxide(CO2) per year (to target levels of several gigatonnes of CO2 per year), because CO2 injection into reservoirs can result in increased pore-fluid pressure and temperature changes, which can reduce the strength of rocks and faults and induce brittle failure. This can result in induced seismicity, whilst hydraulic fracturing of seals could provide pathways for CO2 leakage. Consequently, identifying favourable geomechanical conditions (typically determined through data on pre-injection rock stress, mechanical and elastic properties, and pore-fluid pressures) to minimise deformation of reservoirs and seals represents a key challenge in the selection of safe and effective sites for CCS projects. Critically, however, such geomechanical data are typically spatially limited (i.e. restricted to wells) and mainly consist of pre-injection crustal stress orientation measurements, rather than a full 3D description of the stress tensor and related geomechanical properties. This paper reviews some key geomechanical issues and knowledge gaps (particularly those associated with data availability and limitations) that need to be understood to enable successful reservoir and seal management for CCS projects. We also highlight recent advances in multi-scale and dimensional geomechanical modelling approaches that can be used to assess sites for the secure storage of CO2 as well as other gases, including hydrogen.

Keywords: carbon capture and storage, CO2, faults, geomechanics, pore pressure, rock mechanics, stress.

Biographies

EP23126_B1.gif

Simon Holford is South Australian State Chair of Petroleum Geoscience in the Discipline of Earth Sciences, University of Adelaide. Simon has published ~130 papers on the prospectivity and tectonics of rifted margins, petroleum geomechanics and magmatism in basins. Simon has a PhD from the University of Birmingham and a BSc(Hons) from Keele University.

EP23126_B2.gif

Mojtaba Rajabi is an Australian Research Council Discovery Early Career Researcher Awards Senior Research Fellow at the School of the Environment, the University of Queensland. He has over 15 years of extensive experience in crustal stress analysis, geomechanics, geomechanical-numerical modelling and petrophysics. Mojtaba graduated with a PhD in Earth Sciences from the University of Adelaide in 2016. Since 2012, Dr Rajabi has worked on the Australian and World Stress Map projects, and he is currently the Deputy Head of the World Stress Map project.

EP23126_B3.gif

A Geologist with over 25 years of experience in petroleum geomechanics, Scott Mildren founded JRS Petroleum Research after completing his PhD at the University of Adelaide in 1997 and subsequent Postdocs addressing fault seal and contemporary stress conditions in Brunei. JRS provided geomechanical and image log services across Australasia until it was acquired by Ikon Science in 2012. Scott oversaw the incorporation of geomechanical functionality into Ikon’s RokDoc software and was involved in developing integrated workflows that combined geomechanics, rock physics and seismic inversion for clients around the world. Scott left Ikon in 2020 to found a new company, Tech Limit, which is focussed on the development of their unique platform for building and implementing, repeatable, integrated workflows.

EP23126_B4.gif

Rosalind King is an Associate Professor and Head of the Discipline of Earth Sciences, University of Adelaide. She graduated with a BSc(Hons) (2001) and a PhD (2006) from the University of Liverpool. Her research interests include structural geology, deepwater fold-thrust belts, detachments, fault and fracture mechanics, fault-controlled permeability and petroleum geomechanics.

EP23126_B5.gif

Adam Bailey is a Petroleum Geoscientist at Geoscience Australia, with expertise in petroleum geomechanics, structural geology and basin analysis. He graduated with a BSc(Hons) in 2012 and a PhD in 2016 from the Australian School of Petroleum at the University of Adelaide. Adam is currently part of the Onshore Energy Systems team at Geoscience Australia, where he is currently working on the flagship Exploring for the Future Program.

References

Altmann JB, Müller BIR, Müller TM, Heidbach O, Tingay MRP, Weißhardt A (2014) Pore pressure stress coupling in 3D and consequences for reservoir stress states and fault reactivation. Geothermics 52, 195-205.
| Crossref | Google Scholar |

Auman JB (1989) A laboratory evaluation of core-preservation materials. SPE Formation Evaluation 4, 53-55.
| Crossref | Google Scholar |

Bailey AHE, King RC, Holford SP, Hand M (2016) Incompatible stress regimes from geological and geomechanical datasets: Can they be reconciled? An example from the Carnarvon Basin, Western Australia. Tectonophysics 683, 405-416.
| Crossref | Google Scholar |

Bailey AHE, Wang L, Hall L, Henson P (2019) Rock properties and in-situ stress state of the Egilabria prospect, Lawn Hill Platform, Queensland. The APPEA Journal 59, 383-393.
| Crossref | Google Scholar |

Bell JS (1996) In situ stresses in sedimentary rocks (part 1): measurement techniques. Geoscience Canada 23, 85-100.
| Google Scholar |

Blanton TL, Olson JE (1999) Stress magnitudes from logs: effects of tectonic strains and temperature. SPE Reservoir Evaluation & Engineering 2, 62-68.
| Google Scholar |

Brooke-Barnett S, Flottmann T, Paul PK, Busetti S, Hennings P, Reid R, Rosenbaum G (2015) Influence of basement structures on in situ stresses over the Surat Basin, southeast Queensland. Journal of Geophysical Research: Solid Earth 120, 4946-4965.
| Crossref | Google Scholar |

Buchmann TJ, Connolly PT (2007) Contemporary kinematics of the Upper Rhine Graben: A 3D finite element approach. Global and Planetary Change 58, 287-309.
| Crossref | Google Scholar |

Couzens-Schultz BA, Chan AW (2010) Stress determination in active thrust belts: An alternative leak-off pressure interpretation. Journal of Structural Geology 32, 1061-1069.
| Crossref | Google Scholar |

Deighton I, Draper JJ, Hill AJ, Boreham CJ (2003) A hydrocarbon generation model for the Cooper and Eromanga Basins. The APPEA Journal 43, 433-451.
| Crossref | Google Scholar |

Dempsey D, Kelkar S, Pawar R, Keating E, Coblentz D (2014) Modeling caprock bending stresses and their potential for induced seismicity during CO2 injection. International Journal of Greenhouse Gas Control 22, 223-236.
| Crossref | Google Scholar |

Dewhurst DN, Jones RM (2002) Geomechanical, microstructural, and petrophysical evolution in experimentally reactivated cataclasites: Applications to fault seal prediction. AAPG Bulletin 86, 1383-1405.
| Crossref | Google Scholar |

Dewhurst DN, Jones RM, Hillis RR, Mildren SD (2002) Microstructural and geomechanical characterisation of fault rocks from the Carnarvon and Otway basins. The APPEA Journal 42, 167-186.
| Crossref | Google Scholar |

Dvory NZ, Zoback MD (2021) Prior oil and gas production can limit the occurrence of injection-induced seismicity: A case study in the Delaware Basin of western Texas and southeastern New Mexico, USA. Geology 49, 1198-1203.
| Crossref | Google Scholar |

Ellsworth WL (2013) Injection-induced earthquakes. Science 341, 1225942.
| Crossref | Google Scholar | PubMed |

Gor GY, Elliot TR, Prévost JH (2013) Effects of thermal stresses on caprock integrity during CO2 storage. International Journal of Greenhouse Gas Control 12, 300-309.
| Crossref | Google Scholar |

Heinemann N, Alcalde J, Miocic JM, Hangx SJ, Kallmeyer J, Ostertag-Henning C, Hassanpouryouzband A, Thaysen EM, Strobel GJ, Schmidt-Hattenberger C, Edlmann K (2021) Enabling large-scale hydrogen storage in porous media–the scientific challenges. Energy & Environmental Science 14, 853-864.
| Crossref | Google Scholar |

Herwanger JV, Bottrill AD, Mildren SD (2015) Uses and abuses of the brittleness index with applications to hydraulic stimulation. Paper presented at the SPE/AAPG/SEG Unconventional Resources Technology Conference, San Antonio, Texas, USA, July 2015. https://doi.org/10.15530/URTEC-2015-2172545

Herwanger JV, Bottrill A, Popov P (2016) One 4D geomechanical model and its many applications. 78th EAGE Conference and Exhibition. (European Association of Geoscientists & Engineers) 10.3997/2214-4609.201601368

Hillis RR (2001) Coupled changes in pore pressure and stress in oil fields and sedimentary basins. Petroleum Geoscience 7, 419-425.
| Crossref | Google Scholar |

Holford S, Schofield N, Bunch M, Bischoff A, Swierczek E (2021) Storing CO2 in buried volcanoes. The APPEA Journal 61, 626-631.
| Crossref | Google Scholar |

Jenkins CR, Cook PJ, Ennis-King J, Undershultz J, Boreham C, Dance T, De Caritat P, Etheridge DM, Freifeld BM, Hortle A, Kirste D, Paterson L, Pevzner R, Schacht U, Sharma S, Stalker L, Urosevic M (2012) Safe storage and effective monitoring of CO2 in depleted gas fields. Proceedings of the National Academy of Sciences 109, E35-E41.
| Crossref | Google Scholar | PubMed |

Jones RM, Hillis RR (2003) An integrated, quantitative approach to assessing fault-seal risk. AAPG Bulletin 87, 507-524.
| Crossref | Google Scholar |

Keranen KM, Weingarten M, Abers GA, Bekins BA, Ge S (2014) Induced earthquakes. Sharp increase in central Oklahoma seismicity since 2008 induced by massive wastewater injection. Science 345, 448-451.
| Crossref | Google Scholar | PubMed |

Kim K, Kemeny J, Nickerson M (2014) Effect of rapid thermal cooling on mechanical rock properties. Rock Mechanics and Rock Engineering 47, 2005-2019.
| Crossref | Google Scholar |

King R, Holford S, Hillis R, Tuitt A, Swierczek E, Backé G, Tassone D, Tingay M (2012) Reassessing the in-situ stress regimes of Australia’s petroleum basins. The APPEA Journal 52, 415-426.
| Crossref | Google Scholar |

Lu M, Connell L (2008) Non-isothermal flow of carbon dioxide in injection wells during geological storage. International Journal of Greenhouse Gas Control 2, 248-258.
| Crossref | Google Scholar |

Martínez-Garzón P, Bohnhoff M, Kwiatek G, Dresen G (2013) Stress tensor changes related to fluid injection at The Geysers geothermal field, California. Geophysical Research Letters 40, 2596-2601.
| Crossref | Google Scholar |

Michie EAH, Mulrooney MJ, Braathen A (2021) Fault interpretation uncertainties using seismic data, and the effects on fault seal analysis: a case study from the Horda Platform, with implications for CO2 storage. Solid Earth 12, 1259-1286.
| Crossref | Google Scholar |

Mildren SD, Hillis RR, Lyon PJ, Meyer JJ, Dewhurst DN, Boult PJ (2005) FAST: a new technique for geomechanical assessment of the risk of reactivation-related breach of fault seals. In ‘Evaluating Fault and Cap Rock Seals. Vol. 1’. (Eds P Boult, J Kaldi) AAPG Hedberg Series. pp. 73–85. (AAPG). 10.1306/1060757H23163

Moos D, Zoback MD (1990) Utilization of observations of well bore failure to constrain the orientation and magnitude of crustal stresses: application to continental, Deep Sea Drilling Project, and Ocean Drilling Program boreholes. Journal of Geophysical Research: Solid Earth 95, 9305-9325.
| Crossref | Google Scholar |

Morawietz S, Heidbach O, Reiter K, Ziegler M, Rajabi M, Zimmermann G, Müller B, Tingay M (2020) An open-access stress magnitude database for Germany and adjacent regions. Geothermal Energy 8, 25.
| Crossref | Google Scholar |

Morris A, Ferrill DA, Brent Henderson DB (1996) Slip-tendency analysis and fault reactivation. Geology 24, 275-278.
| Crossref | Google Scholar |

Musolino M, Holford S, King R, Hillis R (2023) Evaluating uncertainty in empirically derived unconfined compressive strength (UCS) estimates and implications for drilling applications; a case study from the Cooper Basin. Exploration Geophysics 54, 493-508.
| Crossref | Google Scholar |

Musolino M, King R, Holford S, Hillis R (2024) ‘Quantifying inaccuracies in vertical stress determination methods in sedimentary basins; a case study of deep coal-bearing strata in the Cooper Basin, Australia’. Special Publications, 546, SP546-2023. (Geological Society: London)

Nagel NB (2001) Compaction and subsidence issues within the petroleum industry: From Wilmington to Ekofisk and beyond. Physics and Chemistry of the Earth, Part A: Solid Earth and Geodesy 26, 3-14.
| Crossref | Google Scholar |

National Academies of Sciences, Engineering and Medicine. (2019) ‘Negative Emissions Technologies and Reliable Sequestration: A Research Agenda’. (Washington, DC: The National Academies Press) doi: doi.org/10.17226/25259

Park J, Griffiths L, Dautriat J, Grande L, Rodriguez IV, Iranpour K, Bjørnarå TI, Moreno HM, Mondol NH, Sauvin G, Sarout J, Soldal M, Oye V, Dewhurst DN, Choi JC, Best AI (2022) Induced-seismicity geomechanics for controlled CO2 storage in the North Sea (IGCCS). International Journal of Greenhouse Gas Control 115, 103614.
| Crossref | Google Scholar |

Raab M, O’Brien G (2023) Carbon capture and storage’s role within Australia’s energy transition: necessary, safe, and reliable. The APPEA Journal 63, S419-S422.
| Crossref | Google Scholar |

Rajabi M, Tingay M, Heidbach O, Hillis R, Reynolds S (2017a) The present-day stress field of Australia. Earth-Science Reviews 168, 165-189.
| Crossref | Google Scholar |

Rajabi M, Heidbach O, Tingay M, Reiter K (2017b) Prediction of the present-day stress field in the Australian continental crust using 3D geomechanical–numerical models. Australian Journal of Earth Sciences 64, 435-454.
| Crossref | Google Scholar |

Rajabi M, Ziegler M, Sliwa R, Esterle J (2023a) 3D Geomechanical-Numerical Model of Northern Bowen Basin: Implications for Fault Characteristics in the Present-Day Stress Regime. In ‘2nd EAGE Workshop on Fluid Flow in Faults and Fracture - Modelling, Uncertainty and Risk’. pp. 1–3. (European Association of Geoscientists and Engineers: Canberra, Australia) 10.3997/2214-4609.202373016

Rajabi M, Sliwa R, Esterle J (2023b) Integrating in-situ stress patterns with basin to local scale structures in the Nebo Synclinorium, Bowen Basin. ACARP Report C29011. 120 p.

Rajabi M, Ziegler M, Ranjbarkarami R, Tavoosiiraj P (2024) A novel approach for geomechanical modelling in the absence of stress magnitude data. Australian Energy Producers Journal 64, S275-S279.
| Crossref | Google Scholar |

Reiter K, Heidbach O (2014) 3-D geomechanical–numerical model of the contemporary crustal stress state in the Alberta Basin (Canada). Solid Earth 5, 1123-1149.
| Crossref | Google Scholar |

Reynolds SD, Mildren SD, Hillis RR, Meyer JJ (2006) Constraining stress magnitudes using petroleum exploration data in the Cooper–Eromanga Basins, Australia. Tectonophysics 415, 123-140.
| Crossref | Google Scholar |

Rutqvist J (2012) The geomechanics of CO2 storage in deep sedimentary formations. Geotechnical and Geological Engineering 30, 525-551.
| Crossref | Google Scholar |

Rutqvist J, Birkholzer JT, Tsang CF (2008) Coupled reservoir–geomechanical analysis of the potential for tensile and shear failure associated with CO2 injection in multilayered reservoir–caprock systems. International Journal of Rock Mechanics and Mining Sciences 45, 132-143.
| Crossref | Google Scholar |

Rutqvist J, Vasco DW, Myer L (2010) Coupled reservoir-geomechanical analysis of CO2 injection and ground deformations at In Salah, Algeria. International Journal of Greenhouse Gas Control 4, 225-230.
| Crossref | Google Scholar |

Rutqvist J, Rinaldi AP, Cappa F, Jeanne P, Mazzoldi A, Urpi L, Guglielmi Y, Vilarrasa V (2016) Fault activation and induced seismicity in geological carbon storage–Lessons learned from recent modeling studies. Journal of Rock Mechanics and Geotechnical Engineering 8, 789-804.
| Crossref | Google Scholar |

Sibson RH (1990) Conditions for fault-valve behaviour. Geological Society, London, Special Publications 54, 15-28.
| Crossref | Google Scholar |

Snæbjörnsdóttir SÓ, Sigfússon B, Sigfússon B, Marieni C, Goldberg D, Gislason SR, Oelkers EH (2020) Carbon dioxide storage through mineral carbonation. Nature Reviews Earth & Environment 1, 90-102.
| Crossref | Google Scholar |

Song Y, Jun S, Na Y, Kim K, Jang Y, Wang J (2023) Geomechanical challenges during geological CO2 storage: a review. Chemical Engineering Journal 456, 140968.
| Crossref | Google Scholar |

Streit JE, Hillis RR (2004) Estimating fault stability and sustainable fluid pressures for underground storage of CO2 in porous rock. Energy 29, 1445-1456.
| Crossref | Google Scholar |

Swierczek E, Backe G, Holford SP, Tenthorey E, Mitchell A (2015) 3D seismic analysis of complex faulting patterns above the Snapper Field, Gippsland Basin: implications for CO2 storage. Australian Journal of Earth Sciences 62, 77-94.
| Crossref | Google Scholar |

Tenthorey E, Dance T, Cinar Y, Ennis-King J, Strand J (2014) Fault modelling and geomechanical integrity associated with the CO2CRC Otway 2C injection experiment. International Journal of Greenhouse Gas Control 30, 72-85.
| Crossref | Google Scholar |

Teodoriu C (2015) Why and when does casing fail in geothermal wells: a surprising question? In ‘Proceedings of World Geothermal Congress 2015’, 19–25 April, Melbourne, Australia. Available at https://www.geothermal-energy.org/pdf/IGAstandard/WGC/2015/21041.pdf

Teufel LW, Rhett DW, Farrell HE (1991) Effect of reservoir depletion and pore pressure drawdown on in situ stress and deformation in the Ekofisk field, North Sea. In ‘ARMA US Rock Mechanics/Geomechanics Symposium’. pp. ARMA-91. (ARMA)

Urpi L, Rinaldi AP, Rutqvist J, Cappa F, Spiers CJ (2016) Dynamic simulation of CO2-injection-induced fault rupture with slip-rate dependent friction coefficient. Geomechanics for Energy and the Environment 7, 47-65.
| Crossref | Google Scholar |

van Ruth P, Hillis R (2000) Estimating pore pressure in the Cooper Basin, South Australia: sonic log method in an uplifted basin. Exploration Geophysics 31, 441-447.
| Crossref | Google Scholar |

Vilarrasa V, Rutqvist J (2017) Thermal effects on geologic carbon storage. Earth-Science Reviews 165, 245-256.
| Crossref | Google Scholar |

Vilarrasa V, Olivella S, Carrera J, Rutqvist J (2014) Long term impacts of cold CO2 injection on the caprock integrity. International Journal of Greenhouse Gas Control 24, 1-13.
| Crossref | Google Scholar |

Vilarrasa V, Carrera J, Olivella S, Rutqvist J, Laloui L (2019) Induced seismicity in geologic carbon storage. Solid Earth 10, 871-892.
| Crossref | Google Scholar |

White JA, Chiaramonte L, Ezzedine S, Foxall W, Hao Y, Ramirez A, McNab W (2014) Geomechanical behavior of the reservoir and caprock system at the In Salah CO2 storage project. Proceedings of the National Academy of Sciences 111, 8747-8752.
| Crossref | Google Scholar | PubMed |

Zhang Y, Jackson C, Krevor S (2022) An Estimate of the Amount of Geological CO2 Storage over the Period of 1996–2020. Environmental Science & Technology Letters 9, 693-698.
| Crossref | Google Scholar | PubMed |

Ziegler MO, Heidbach O (2021) Manual of the Matlab Script FAST Calibration v2.0. World Stress Map Technical Report 21-02. (GFZ German Research Centre for Geosciences) 10.48440/wsm.2021.002

Ziegler MO, Heidbach O, Zang A, Martínez‐Garzón P, Bohnhoff M (2017) Estimation of the differential stress from the stress rotation angle in low permeable rock. Geophysical Research Letters 44, 6761-6770.
| Crossref | Google Scholar |

Ziegler MO, Heidbach O, Rajabi M (2023) No data instead of big data – a novel approach to stress modelling. Safety of Nuclear Waste Disposal 2, 79-80.
| Crossref | Google Scholar |

Zoback MD (2007) ‘Reservoir Geomechanics.’ (Cambridge University Press)