R. A. Gingold and J. J. Monaghan, Smoothed particle hydrodynamics: theory and application to non-spherical stars, Monthly notices of the royal astronomical society, vol.181, issue.3, pp.375-389, 1977.

L. B. Lucy, A numerical approach to the testing of the fission hypothesis, The astronomical journal, vol.82, pp.1013-1024, 1977.

J. J. Monaghan, An introduction to sph, Computer physics communications, vol.48, issue.1, pp.89-96, 1988.

J. Monaghan, Smoothed particle hydrodynamics and its diverse applications, Annual Review of Fluid Mechanics, vol.44, pp.323-346, 2012.

L. Qiu, Two-dimensional sph simulations of landslide-generated water waves, Journal of Hydraulic Engineering, vol.134, issue.5, pp.668-671, 2008.

W. Wang, G. Chen, H. Zhang, S. Zhou, S. Liu et al., Analysis of landslide-generated impulsive waves using a coupled dda-sph method, Engineering Analysis with Boundary Elements, vol.64, pp.267-277, 2016.

B. Ataie-ashtiani and G. Shobeyri, Numerical simulation of landslide impulsive waves by incompressible smoothed particle hydrodynamics, International Journal for numerical methods in fluids, vol.56, issue.2, pp.209-232, 2008.

H. Schwaiger and B. Higman, Lagrangian hydrocode simulations of the 1958 lituya bay tsunamigenic rockslide, Geochemistry, Geophysics, Geosystems, vol.8, issue.7, 2007.

D. Miller, Giant waves in lituya bay, alaska, geological survey professional paper 354-c, US Government Printing Office, 1960.

C. Shi, Y. An, Q. Wu, Q. Liu, and Z. Cao, Numerical simulation of landslide-generated waves using a soil-water coupling smoothed particle hydrodynamics model, Advances in Water Resources, vol.92, pp.130-141, 2016.

H. H. Bui, K. Sako, and R. Fukagawa, Numerical simulation of soil-water interaction using smoothed particle hydrodynamics (sph) method, Journal of Terramechanics, vol.44, issue.5, pp.339-346, 2007.

C. Wang, Y. Wang, C. Peng, and X. Meng, Smoothed particle hydrodynamics simulation of water-soil mixture flows, Journal of Hydraulic Engineering, vol.142, issue.10, p.4016032, 2016.

A. A. Sulianto and K. Murakami, Sph simulation of local scouring on rubble mound due to tsunami overflow, strain, vol.2, issue.2, p.4, 2015.

O. Mohr, Abhandlungen aus dem gebiete der technischen mechanik, 1906.

C. A. Coulomb, Essai sur une application des regles de maximis & minimis a quelques problemes de statique: Relatifs a l'architecture. publisher not identified, p.1773

D. C. Drucker and W. Prager, Soil mechanics and plastic analysis or limit design, Quarterly of applied mathematics, vol.10, issue.2, pp.157-165, 1952.

T. Capone, A. Panizzo, and J. J. Monaghan, Sph modelling of water waves generated by submarine landslides, Journal of Hydraulic Research, vol.48, issue.S1, pp.80-84, 2010.

M. Khanpour, A. Zarrati, M. Kolahdoozan, A. Shakibaeinia, and S. Amirshahi, Mesh-free sph modeling of sediment scouring and flushing, Computers & Fluids, vol.129, pp.67-78, 2016.

A. Shakibaeinia and Y. Jin, A mesh-free particle model for simulation of mobile-bed dam break, Advances in Water Resources, vol.34, issue.6, pp.794-807, 2011.

S. Manenti, S. Sibilla, M. Gallati, G. Agate, and R. Guandalini, Sph simulation of sediment flushing induced by a rapid water flow, Journal of Hydraulic Engineering, vol.138, issue.3, pp.272-284, 2011.

G. Fourtakas and B. Rogers, Modelling multi-phase liquid-sediment scour and resuspension induced by rapid flows using smoothed particle hydrodynamics (sph) accelerated with a graphics processing unit (gpu), Advances in Water Resources, vol.92, pp.186-199, 2016.

C. Ulrich, M. Leonardi, and T. Rung, Multi-physics sph simulation of complex marine-engineering hydrodynamic problems, Ocean Engineering, vol.64, pp.109-121, 2013.

D. Wang, S. Li, T. Arikawa, and H. Gen, Isph simulation of scour behind seawall due to continuous tsunami overflow, Coastal Engineering Journal, vol.58, issue.03, p.1650014, 2016.

M. Antuono, A. Colagrossi, S. Marrone, and D. Molteni, Free-surface flows solved by means of sph schemes with numerical diffusive terms, Computer Physics Communications, vol.181, issue.3, pp.532-549, 2010.

J. P. Morris, Simulating surface tension with smoothed particle hydrodynamics, International journal for numerical methods in fluids, vol.33, issue.3, pp.333-353, 2000.

R. Sivanesapillai, N. Falkner, A. Hartmaier, and H. Steeb, A csf-sph method for simulating drainage and imbibition at pore-scale resolution while tracking interfacial areas, Advances in Water Resources, vol.95, pp.212-234, 2016.

A. Colagrossi and M. Landrini, Numerical simulation of interfacial flows by smoothed particle hydrodynamics, Journal of Computational Physics, vol.191, issue.2, pp.448-475, 2003.

O. Zienkiewicz, P. Jain, and E. Onate, Flow of solids during forming and extrusion: some aspects of numerical solutions, International Journal of Solids and Structures, vol.14, issue.1, pp.15-38, 1978.

R. P. Chhabra, Non-newtonian fluids: an introduction, Rheology of Complex Fluids, pp.3-34, 2010.

R. B. Bird, R. C. Armstrong, and O. Hassager, Dynamics of polymer Fluid mechanics, 1987.

R. V. Mises, Mechanik der plastischen formänderung von kristallen, ZAMM-Journal of Applied Mathematics and Mechanics/Zeitschrift für Angewandte Mathematik und Mechanik, vol.8, issue.3, pp.161-185, 1928.

T. C. Papanastasiou, Flows of materials with yield, Journal of Rheology, vol.31, issue.5, pp.385-404, 1987.

M. Bercovier and M. Engelman, A finite-element method for incompressible non-newtonian flows, Journal of Computational Physics, vol.36, issue.3, pp.313-326, 1980.

D. Vola, F. Babik, and J. Latché, On a numerical strategy to compute gravity currents of non-newtonian fluids, Journal of computational physics, vol.201, issue.2, pp.397-420, 2004.

S. Hosseini, M. Manzari, and S. Hannani, A fully explicit three-step sph algorithm for simulation of non-newtonian fluid flow, International Journal of Numerical Methods for Heat & Fluid Flow, vol.17, issue.7, pp.715-735, 2007.

I. R. Ionescu, A. Mangeney, F. Bouchut, and O. Roche, Viscoplastic modeling of granular column collapse with pressure-dependent rheology, Journal of Non-Newtonian Fluid Mechanics, vol.219, pp.1-18, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01080456

S. Moriguchi, R. I. Borja, A. Yashima, and K. Sawada, Estimating the impact force generated by granular flow on a rigid obstruction, Acta Geotechnica, vol.4, issue.1, pp.57-71, 2009.

B. Domnik, Multiscale Modelling and Simulation of Rapid Granular Flows, 2013.

P. Jop, Y. Forterre, and O. Pouliquen, A constitutive law for dense granular flows, Nature, vol.441, issue.7094, pp.727-730, 2006.
URL : https://hal.archives-ouvertes.fr/hal-00118375

J. Chauchat and M. Médale, A three-dimensional numerical model for dense granular flows based on the µ (i) rheology, Journal of Computational Physics, vol.256, pp.696-712, 2014.
URL : https://hal.archives-ouvertes.fr/hal-00915255

F. Salazar, J. Irazábal, A. Larese, and E. Oñate, Numerical modelling of landslide-generated waves with the particle finite element method (pfem) and a non-newtonian flow model, International Journal for Numerical and Analytical Methods in Geomechanics, 2015.

M. Liu, G. Liu, and K. Lam, Constructing smoothing functions in smoothed particle hydrodynamics with applications, Journal of Computational and applied Mathematics, vol.155, issue.2, pp.263-284, 2003.

J. P. Morris, Analysis of smoothed particle hydrodynamics with applications, 1996.

A. Colagrossi, A meshless lagrangian method for free-surface and interface flows with fragmentation, These, 2005.

J. J. Monaghan, Smoothed particle hydrodynamics, Reports on progress in physics, vol.68, p.1703, 2005.

A. Ferrari, M. Dumbser, E. F. Toro, and A. Armanini, A new 3d parallel sph scheme for free surface flows, Computers & Fluids, vol.38, issue.6, pp.1203-1217, 2009.

D. Molteni and A. Colagrossi, A simple procedure to improve the pressure evaluation in hydrodynamic context using the sph, Computer Physics Communications, vol.180, issue.6, pp.861-872, 2009.

S. Adami, X. Hu, and N. Adams, A new surface-tension formulation for multi-phase sph using a reproducing divergence approximation, Journal of Computational Physics, vol.229, issue.13, pp.5011-5021, 2010.

X. Hu and N. A. Adams, An incompressible multi-phase sph method, Journal of computational physics, vol.227, issue.1, pp.264-278, 2007.

X. Fan, R. Tanner, and R. Zheng, Smoothed particle hydrodynamics simulation of non-newtonian moulding flow, Journal of Non-Newtonian Fluid Mechanics, vol.165, issue.5, pp.219-226, 2010.

A. Xenakis, S. Lind, P. Stansby, and B. Rogers, An incompressible sph scheme with improved pressure predictions for free-surface generalised newtonian flows, Journal of Non-Newtonian Fluid Mechanics, vol.218, pp.1-15, 2015.

P. Randles and L. Libersky, Smoothed particle hydrodynamics: some recent improvements and applications, Computer methods in applied mechanics and engineering, vol.139, issue.1-4, pp.375-408, 1996.

H. Gotoh and J. Fredso/e, Lagrangian two-phase flow model of the settling behavior of fine sediment dumped into water, Coastal Engineering, pp.3906-3919, 2000.

A. Krimi, M. Rezoug, S. Khelladi, X. Nogueira, M. Deligant et al., Smoothed particle hydrodynamics: A consistent model for interfacial multiphase fluid flow simulations, Journal of Computational Physics, vol.358, pp.53-87, 2018.
URL : https://hal.archives-ouvertes.fr/hal-02438236

S. Adami, X. Hu, and N. Adams, A generalized wall boundary condition for smoothed particle hydrodynamics, Journal of Computational Physics, vol.231, issue.21, pp.7057-7075, 2012.

J. J. Monaghan, Simulating free surface flows with sph, Journal of computational physics, vol.110, issue.2, pp.399-406, 1994.

J. Brackbill, D. B. Kothe, and C. Zemach, A continuum method for modeling surface tension, Journal of computational physics, vol.100, issue.2, pp.335-354, 1992.

S. Shao and E. Y. Lo, Incompressible sph method for simulating newtonian and non-newtonian flows with a free surface, Advances in water resources, vol.26, issue.7, pp.787-800, 2003.

J. P. Morris, P. J. Fox, and Y. Zhu, Modeling low reynolds number incompressible flows using sph, Journal of computational physics, vol.136, issue.1, pp.214-226, 1997.

D. Shepard, A two-dimensional interpolation function for irregularlyspaced data, Proceedings of the 1968 23rd ACM National Conference, ACM '68, pp.517-524, 1968.

D. Komatina and M. Jovanovic, Experimental study of steady and unsteady free surface flows with water-clay mixtures, Journal of Hydraulic Research, vol.35, issue.5, pp.579-590, 1997.

E. Lajeunesse, J. Monnier, and G. Homsy, Granular slumping on a horizontal surface, Physics of fluids, vol.17, issue.10, p.103302, 2005.

E. Lajeunesse, A. Mangeney-castelnau, and J. Vilotte, Spreading of a granular mass on a horizontal plane, Physics of Fluids, vol.16, issue.7, pp.2371-2381, 2004.

D. R. Tappin, P. Watts, and S. T. Grilli, The Papua New Guinea tsunami of 17 July 1998: anatomy of a catastrophic event, Natural Hazards and Earth System Science, vol.8, pp.243-266, 2008.
URL : https://hal.archives-ouvertes.fr/hal-00299504

D. Miller, Giant waves in lituya bay, alaska, U.S. Geological Survey, pp.51-86, 1960.

S. A. Rzadkiewicz, C. Mariotti, and P. Heinrich, Numerical simulation of submarine landslides and their hydraulic effects, Journal of Waterway, Port, Coastal, and Ocean Engineering, vol.123, issue.4, pp.149-157, 1997.

S. A. Rzadkiewicz, C. Mariotti, and P. Heinrich, Modelling of submarine landslides and generated water waves, Physics and Chemistry of the Earth, vol.21, issue.1-2, pp.7-12, 1996.

C. Beverly and R. Tanner, Numerical analysis of three-dimensional bingham plastic flow, Journal of non-newtonian fluid mechanics, vol.42, issue.1-2, pp.85-115, 1992.

S. Viroulet, A. Sauret, O. Kimmoun, and C. Kharif, Granular collapse into water: toward tsunami landslides, J. Visualization, vol.16, issue.3, pp.189-191, 2013.
URL : https://hal.archives-ouvertes.fr/hal-00948389

S. Viroulet, A. Sauret, and O. Kimmoun, Tsunami generated by a granular collapse down a rough inclined plane, Europhysics Letters), vol.105, issue.3, p.34004, 2014.
URL : https://hal.archives-ouvertes.fr/hal-00952499

B. Spinewine, Two-layer flow behaviour and the effects of granular dilatancy in dam-break induced sheet-flow, Hydraulic Structures, 2005.