I. Aaltonen, M. Lahti, J. Engström, J. Mattila, M. Paananen et al., Geological Model of the Olkiluoto Site version 2, vol.70, 2010.

A. Alvarez-del-castillo, A. A. Alaniz-alvarez, A. F. Nieto-samaniego, S. Xu, G. H. Ochoa-gonzales et al., Software for determining the direction of movement, shear and normal stresses of a fault under a determined stress state, Comput. Geosci, vol.104, pp.84-92, 2017.

G. Anderson, B. Aagaard, K. Hudnut, and F. Arthaud, Méthode de détermination graphique des directions de raccourcissement, d'allongement et intermédiaire d'une population de failles, B. Soc. Geol. Fr, vol.302, pp.729-737, 1946.

R. Arvidsson and D. Ask, Semi-Integration of Overcoring Stress Data and Review of Rock Stress Data at the Olkiluoto Site, Fennoscandian earthquakes: Whole crust rupturing related to postglacial rebound, vol.274, pp.744-746, 1996.

J. Beavan, M. Motagh, E. J. Fielding, N. Donnelly, and D. Collett, Fault slip models of the 2010-2011 Canterbury, New Zealand, earthquakes from geodetic data and observations of postseismic ground deformation, N. Z. J. Geol. Geophys, vol.55, pp.207-221, 2012.

A. Berger and M. F. Loutre, Paleoclimate sensitivity to CO2 and insolation, Ambio, vol.26, pp.32-37, 1997.

K. R. Berryman, U. A. Cochran, K. J. Clark, G. P. Biasi, R. M. Langridge et al., Major Earthquakes Occur Regularly on an Isolated Plate Boundary Fault, J. Struct. Geol, vol.336, pp.17-43, 2012.

J. D. Byerlee, Friction of rocks, Pure Appl. Geophys, vol.116, pp.615-626, 1978.

F. M. Chester, C. Rowe, K. Ujiie, J. Kirkpatrick, C. Regalla et al., Structure and Composition of the Plate-Boundary Slip Zone for the 2011 Tohoku-Oki Earthquake, vol.342, 1208.

C. Collettini and F. Trippetta, A slip tendency analysis to test mechanical and structural control on aftershock rupture planes, Earth Planet. Sci. Lett, vol.255, pp.402-413, 2007.

C. Collettini, A. Niemeijer, C. Viti, and C. Marone, Fault zone fabric and fault weakness, Nature, vol.462, pp.907-911, 2009.

J. G. Crider and D. D. Pollard, Fault linkage: Threedimensional mechanical interaction between echelon normal faults, J. Geophys. Res.-Sol. Ea, vol.103, pp.24373-24391, 1998.

D. R. Faulkner, T. M. Mitchell, D. Healy, and M. J. Heap, Slip on "weak" faults by the rotation of regional stress in the fracture damage zone, Nature, vol.444, pp.922-925, 2006.

D. Forsyth and S. Uyedaf, On the Relative Importance of the Driving Forces of Plate Motion, Geophys. J. Roy. Astronom. Soc, vol.43, pp.163-200, 1975.

B. Grollimund and M. D. Zoback, Post glacial lithospheric fexure and induced stresses and pore pressure changes in the northern North Sea, Tectonophysics, vol.21, pp.61-81, 2000.

A. Hackston and E. Rutter, The Mohr-Coulomb criterion for intact rock strength and friction -a re-evaluation and consideration of failure under polyaxial stresses, Solid Earth, vol.7, pp.493-508, 2016.

M. Hakkala, T. Siren, K. Kemppainen, R. Christiansson, M. et al., Situ Stress Measurement with the New LVDT-cell -Method Description and Verification, 2013.

I. J. Hamling, S. Hreinsdóttir, K. Clark, J. Elliott, C. Liang et al., Complex multifault rupture during the 2016 Mw 7.8 Kaik?ura earthquake, vol.356, 2017.

R. S. Carmichael, Practical Handbook of Physical Properties of Rocks and Minerals, pp.672-715, 1989.

D. Healy, T. G. Blenkinsop, N. E. Timms, P. G. Meredith, T. M. Mitchell et al., Polymodal faulting: Time for a new angle on shear failure, J. Struct. Geol, vol.80, pp.57-71, 2015.

R. E. Holdsworth, Weak Faults-Rotten Cores, Science, vol.303, 2004.

J. A. Hudson, J. W. Cosgrove, J. , and E. , Estimating the Mechanical Properties of the Brittle Deformation Zones at Olkiluoto, Posiva Working Report, vol.67, p.12, 2008.

J. C. Jaeger and . Cook, Fundamentals of Rock Mechanics, 1979.

A. C. Johnston, Suppression of earthquakes by large continental ice sheets, Nature, vol.330, pp.467-469, 1987.

K. E. Karlstrom and M. L. Williams, Heterogeneity of the middle crust: Implications for strength of continental lithosphere, Geology, vol.26, pp.815-818, 1998.

S. A. Kattenhorn and D. D. Pollard, Integrating 3D seismic data, field analogs and mechanical models in the analysis of segmented normal faults in the Wytch Farm oil field, southern England, AAPG Bull, vol.85, pp.1183-1210, 2001.

S. A. Kattenhorn, A. Aydin, and D. D. Pollard, Joints at high angles to normal fault strike: an explanation using 3-D numerical models of fault-perturbed stress field, J. Struct. Geol, vol.23, pp.1-23, 2000.

M. Lejri, F. Maerten, L. Maerten, and R. Soliva, Accuracy evaluation of both Wallace-Bott and BEM-based paleostress inversion methods, Tectonophysics, vol.694, pp.130-145, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01467165

J. Lemieux, E. A. Sudicky, W. R. Peltier, and L. Tarasov, Dynamics of groundwater recharge and seepage over the Canadian landscape during the Wisconsinian glaciation, J. Geophys. Res.-Earth Surf, vol.113, p.1011, 2008.

R. J. Lisle and D. C. Srivastava, Test of the frictional reactivation theory for faults and validity of fault-slip analysis, Geology, vol.32, pp.569-572, 2004.

P. J. Lovely, D. D. Pollard, and O. Mutlu, Regions of Reduced Static Stress Drop near Fault Tips for Large Strike-Slip EarthquakesRegions of Reduced Static Stress Drop near Fault Tips for Large Strike-Slip Earthquakes, B. Seismol. Soc. Am, vol.99, pp.1691-1704, 2009.

E. H. Madden, F. Maerten, and D. D. Pollard, Mechanics of nonplanar faults at extensional steps with application to the, 1992.

C. Landers, J. Geophys. Res.-Sol. Ea, vol.118, pp.3249-3263, 2013.

F. Maerten, L. Maerten, and M. Cooke, Solving 3D boundary element problems using constrained iterative approach, Comput. Geosci, vol.14, pp.551-564, 2010.
URL : https://hal.archives-ouvertes.fr/hal-00561035

F. Maerten, L. Maerten, and D. D. Pollard, iBem3D, a threedimensional iterative boundary element method using angular dislocations for modeling geologic structures, Comput. Geosci, vol.72, pp.1-17, 2014.

L. Maerten, D. D. Pollard, and F. Maerten, Digital mapping of three-dimensional structures of the Chimney Rock fault system, central Utah, J. Struct. Geol, vol.23, pp.585-592, 2001.

L. Maerten, P. Gillespie, and D. D. Pollard, Effects of local stress perturbation on secondary fault development, J. Struct. Geol, vol.24, pp.145-153, 2002.

L. Maerten, F. Maerten, and M. Lejri, Along fault friction and fluid pressure effects on the spatial distribution of fault-related fractures, J. Struct. Geol, vol.108, pp.198-212, 2018.

R. Marrett and R. W. Allmendinger, Kinematic analysis of fault-slip data, J. Struct. Geol, vol.12, pp.973-986, 1990.

J. Mattila and G. Viola, New constraints on 1.7 Gyr of brittle tectonic evolution in southwestern Finland derived from a structural study at the site of a potential nuclear waste repository (Olkiluoto Island), J. Struct. Geol, vol.67, pp.50-74, 2014.

J. Mattila, I. Aaltonen, I. Kemppainen, L. Wikström, M. Paananen et al., Geological Model of the Olikiluotto Site, Version 1.0, Olkiluoto, 2008.

G. C. Mclaskey, A. M. Thomas, S. D. Glaser, and R. M. Nadeau, Fault healing promotes high-frequency earthquakes in laboratory experiments and on natural faults, Nature, vol.491, pp.101-105, 2012.

I. Moeck, G. Kwiatek, and G. Zimmermann, Slip tendency analysis, fault reactivation potential and induced seismicity in a deep geothermal reservoir, J. Struct. Geol, vol.31, pp.1174-1182, 2009.

H. Mönkkönen, M. Hakkala, M. Paananen, L. , and E. , Onkalo Rock Mechanics Model Version 2, p.12, 2012.

A. Morris, D. B. Henderson, and D. A. Ferrill, Slip-tendency analysis and fault reactivation, vol.24, pp.275-278, 1996.

C. A. Morrow, D. E. Moore, and D. A. Lockner, The effect of mineral bond strength and adsorbed water on fault gouge frictional strength, Geophys. Res. Lett, vol.27, pp.815-818, 2000.

M. C. Neves, L. T. Paiva, L. , and J. , Software for slip-tendency analysis in 3D: A plug-in for Coulomb, Comput. Geosci, vol.35, pp.2345-2352, 2009.

A. Nicol, J. Watterson, J. J. Walsh, and C. Childs, The shapes, major axis orientations and displacement patterns of fault surfaces, J. Struct. Geol, vol.18, pp.235-248, 1996.

J. E. Olson and D. D. Pollard, The initiation and growth of en echelon veins, J. Stuct. Geol, vol.13, pp.595-608, 1991.

D. D. Pollard and . Fletcher, Fundamentals of Structural Geology, 2005.

Z. Reches and J. H. Dieterich, Faulting of rocks in threedimensional strain fields, I. failure of rocks in polyaxial, servocontrol experiments, Tectonophysics, vol.95, pp.111-132, 1983.

E. H. Rutter and C. T. Glover, The deformation of porous sandstones; are Byerlee friction and the critical state line equivalent?, J. Struct. Geol, vol.44, pp.129-140, 2012.

C. H. Scholz, The Mechanics of Earthquakes and Faulting, 2019.

J. Sjöberg, Overcoring Rock Stress Measurements in Borehole OL-KR24, Olkiluoto, Physical Geology, vol.60, 1987.

R. Soliva, A. Benedicto, R. A. Schultz, L. Maerten, and L. Micarelli, Displacement and interaction of normal fault segments branched at depth: Implications for fault growth and potential earthquake rupture size, J. Struct. Geol, vol.30, pp.1288-1299, 2008.
URL : https://hal.archives-ouvertes.fr/hal-00411161

A. L. Thomas, Poly3D: a three-dimensional, polygonal element, displacement discontinuity boundary element computer program with applications to fractures, faults, and cavities in the earth's crust, MS thesis, 1993.

J. Townend and M. D. Zoback, How faulting keeps the crust strong, Geology, vol.28, pp.399-402, 2000.

T. Ulrich, A. Gabriel, J. Ampuero, and W. Xu, Dynamic viability of the 2016 Mw 7.8 Kaik?ura earthquake cascade on weak crustal faults, Nat. Commun, vol.10, 2019.
URL : https://hal.archives-ouvertes.fr/hal-02116213

E. Van-rijsingen, F. Funiciello, F. Corbi, and S. Lallemand, Rough Subducting Seafloor Reduces Interseismic Cou

R. Soliva, Fault slip envelope pling and Mega-Earthquake Occurrence: Insights From Analogue Models, Geophys. Res. Lett, vol.46, pp.3124-3132, 2019.

D. L. Wells and K. J. Coppersmith, New empirical relationships among magnitude, rupture length, rupture width, rupture area, and surface displacement, B. Seismol. Soc. Am, vol.84, pp.974-1002, 1994.

C. A. Wibberley, G. Yielding, D. Toro, and G. , Recent advances in the understanding of fault zone internal structure: a review, vol.299, 2008.

E. J. Willemse, D. D. Pollard, and A. Aydin, Threedimensional analyses of slip distributions on normal fault arrays with consequences for fault scaling, J. Struct. Geol, vol.18, pp.295-309, 1996.

Y. Yukutake, T. Takeda, Y. , and A. , The applicability of frictional reactivation theory to active faults in Japan based on slip tendency analysis, Earth Planet. Sci. Lett, vol.411, pp.188-198, 2015.