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Thermo-poromechanics of chemically active faults-enriching Anderson's theory of faulting in sedimentary rocks

Publication ,  Journal Article
Sari, M; Alevizos, S; Poulet, T; Veveakis, E
Published in: Geophysical Journal International
November 1, 2022

A suggested model to explain the episodic nature of slow earthquakes involves shear zones exhibiting rate-and temperature-dependent frictional behaviour hosting fluid-release chemical reactions. In this work we extend the considerations of that approach, coupling the effects of the mechanics at different faulting regimes to the chemically induced fluid pressurization inside the fault. By introducing a pressure and temperature dependence of the mechanical response in an elasto-viscoplastic model we are able to correlate the inclination angles of those specific faults with their dynamical response and enrich their faulting regimes with kinematic characterization. We retrieve that steeply dipping (normal) faults exhibit a simple response of either being locked or slip at fast seismic velocities; shallow dipping (reverse) faults on the other hand exhibit a much richer behaviour where episodic stick-slip instabilities can be encountered. When present, their magnitude depends on the (reverse) fault's angle with faults dipping at around 45° exhibiting a maximum, whereas sub-horizontal thrusts exhibit episodic stick-slip events as low velocities and magnitude. These findings position slow earthquakes and episodic tremor and slip sequences as a natural response of shallow dipping (thrust) faults, in a regime that according to rate-And-state friction considerations is intrinsically stable.

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Published In

Geophysical Journal International

DOI

EISSN

1365-246X

ISSN

0956-540X

Publication Date

November 1, 2022

Volume

231

Issue

2

Start / End Page

1150 / 1162

Related Subject Headings

  • Geochemistry & Geophysics
  • 4013 Geomatic engineering
  • 3706 Geophysics
  • 3705 Geology
  • 0909 Geomatic Engineering
  • 0404 Geophysics
  • 0403 Geology
 

Citation

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ICMJE
MLA
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Sari, M., Alevizos, S., Poulet, T., & Veveakis, E. (2022). Thermo-poromechanics of chemically active faults-enriching Anderson's theory of faulting in sedimentary rocks. Geophysical Journal International, 231(2), 1150–1162. https://doi.org/10.1093/gji/ggac252
Sari, M., S. Alevizos, T. Poulet, and E. Veveakis. “Thermo-poromechanics of chemically active faults-enriching Anderson's theory of faulting in sedimentary rocks.” Geophysical Journal International 231, no. 2 (November 1, 2022): 1150–62. https://doi.org/10.1093/gji/ggac252.
Sari M, Alevizos S, Poulet T, Veveakis E. Thermo-poromechanics of chemically active faults-enriching Anderson's theory of faulting in sedimentary rocks. Geophysical Journal International. 2022 Nov 1;231(2):1150–62.
Sari, M., et al. “Thermo-poromechanics of chemically active faults-enriching Anderson's theory of faulting in sedimentary rocks.” Geophysical Journal International, vol. 231, no. 2, Nov. 2022, pp. 1150–62. Scopus, doi:10.1093/gji/ggac252.
Sari M, Alevizos S, Poulet T, Veveakis E. Thermo-poromechanics of chemically active faults-enriching Anderson's theory of faulting in sedimentary rocks. Geophysical Journal International. 2022 Nov 1;231(2):1150–1162.
Journal cover image

Published In

Geophysical Journal International

DOI

EISSN

1365-246X

ISSN

0956-540X

Publication Date

November 1, 2022

Volume

231

Issue

2

Start / End Page

1150 / 1162

Related Subject Headings

  • Geochemistry & Geophysics
  • 4013 Geomatic engineering
  • 3706 Geophysics
  • 3705 Geology
  • 0909 Geomatic Engineering
  • 0404 Geophysics
  • 0403 Geology