Frictional behaviour and transport properties of simulated fault gouges derived from a natural CO2 reservoir

Publication date

2016

Authors

Bakker, ElisendaISNI 0000000460153375
Hangx, SuzanneORCID 0000-0003-2253-3273ISNI 0000000397125426
Niemeijer, André R.ORCID 0000-0003-3983-9308ISNI 0000000436376624
Spiers, C. J.ISNI 0000000394256746

Editors

Advisors

Supervisors

Document Type

Article
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License

taverne

Abstract

We investigated the effects of long-term CO2-brine-rock interactions on the frictional and transport properties of reservoir-derived fault gouges, prepared from both unexposed and CO2-exposed sandstone, and from aragonite-cemented fault rock of an active CO2-leaking conduit, obtained from a natural CO2field (Green River, Utah). Direct shear experiments (5–90 MPa effective normal stress; lab dry or wet; 20–100 °C) showed that the sandstone-derived gouges are characterised by virtually normal stress- and temperature-independent friction coefficients (μ ≈ 0.5–0.6). The data exhibited stable, velocity-strengthening behaviour moving towards near-neutral velocity-dependent behaviour with increasing effective normal stress. The carbonate-rich fault rock gouges exhibited higher friction coefficients (μ ≈ 0.6–0.7), with a transition from velocity-strengthening behaviour at room temperature (dry) to velocity-weakening behaviour at 100 °C (dry and wet), i.e. a transition from stable sliding to potentially unstable or seismogenic slip. Cross-fault permeability decreased up to 1.5 orders with increasing displacement, showing slightly lower values for the carbonate-rich gouges. We infer that the mechanical behaviour of fault gouges derived from the sandstones studied will not be strongly influenced by long-term CO2-exposure, due to the low content of reactive minerals in the protolith. Significant changes in frictional strength or (micro)seismic potential of faults present in a CO2storage system are only expected when there is major carbonate precipitation in the fault damage zone due to rapid CO2leakage and degassing.

Keywords

CCS, Entrada sandstone, Carbonate precipitation, CO2 leakage, Taverne

Citation

Bakker, E, Hangx, S J T, Niemeijer, A R & Spiers, C J 2016, 'Frictional behaviour and transport properties of simulated fault gouges derived from a natural CO 2 reservoir', International Journal of Greenhouse Gas Control, vol. 54, pp. 70-83. https://doi.org/10.1016/j.ijggc.2016.08.029