F. D. Fischer, Q. Sun, and K. Tanaka, Transformation-induced plasticity (TRIP), Appl Mech Rev, vol.49, pp.317-64, 1996.
URL : https://hal.archives-ouvertes.fr/hal-01113497

V. F. Zackay, E. R. Parker, D. Fahr, and R. Busch, The enhancement of ductility in high--strength steels, ASM Trans Quart, vol.60, pp.252-261, 1967.

W. S. Park, S. W. Yoo, M. H. Kim, and J. M. Lee, Strain-rate effects on the mechanical behavior of the AISI 300 series of austenitic stainless steel under cryogenic environments

, Mater Des, vol.31, pp.3630-3670, 2010.

S. Kumar, H. Kwon, K. Choi, H. Cho, J. Lim et al., Current status and future projections of LNG demand and supplies: a global prospective, Energy Policy, vol.39, pp.4097-104, 2011.

S. Curtze, V. Kuokkala, M. Hokka, and P. Peura, Deformation behavior of TRIP and DP steels in tension at different temperatures over a wide range of strain rates, Mater Sci Eng A, vol.507, pp.124-155, 2009.

J. A. Rodríguez-martínez, A. Rusinek, and R. Pesci, Experimental survey on the behaviour of AISI 304 steel sheets subjected to perforation, Thin-Wall Struct, vol.48, pp.966-78, 2010.

W. Lee, C. Lin, T. Chen, and W. Luo, High temperature deformation and fracture behaviour of 316 L stainless steel under high strain rate loading, J Nucl Mater, vol.420, pp.226-260, 2012.

Y. C. Lin, W. Dong, M. Zhou, D. Wen, and D. Chen, A unified constitutive model based on dislocation density for an Al-Zn-Mg-Cu alloy at time-variant hot deformation conditions, Mater Sci Eng A, vol.718, pp.165-72, 2018.

T. S. Byun, N. Hashimoto, and K. Farrell, Temperature dependence of strain hardening and plastic instability behaviors in austenitic stainless steels, Acta Mater, vol.52, pp.3889-99, 2004.

A. S. Hamada, L. P. Karjalainen, R. Misra, and J. Talonen, Contribution of deformation mechanisms to strength and ductility in two Cr-Mn grade austenitic stainless steels

, Mater Sci Eng A, vol.559, pp.336-380, 2013.

C. Zheng and W. Yu, Effect of low-temperature on mechanical behavior for an AISI 304 austenitic stainless steel, Mater Sci Eng A, vol.710, pp.359-65, 2018.

D. Krizan, TRIP steels: advanced high strength multiphase steels for automotive applications, Proc Int Conf 2006:659-68 on "COM-MATTECH

Y. C. Lin, H. Yang, D. He, and J. Chen, A physically-based model considering dislocation-solute atom dynamic interactions for a nickel-based superalloy at intermediate temperatures, Mater Des, vol.183, p.108122, 2019.

J. Talonen, H. Hänninen, P. Nenonen, and G. Pape, Effect of strain rate on the strain-induced ? ? -martensite transformation and mechanical properties of austenitic stainless steels, Metall Mat Trans A, vol.36, pp.421-453, 2005.

W. Lee and C. Lin, Impact properties and microstructure evolution of 304 L stainless steel, Mater Sci Eng A, vol.308, pp.124-159, 2001.

W. S. Park, M. S. Chun, M. S. Han, M. H. Kim, and J. M. Lee, Comparative study on mechanical behavior of low temperature application materials for ships and offshore structures: part I -Experimental investigations, Mater Sci Eng A, vol.528, pp.5790-803, 2011.

J. A. Lichtenfeld, C. J. Van-tyne, and M. C. Mataya, Effect of strain rate on stress-strain behavior of alloy 309 and 304 L austenitic stainless steel, Metall Mat Trans A, vol.37, pp.147-61, 2006.

K. Ishikawa and S. Tanimura, Strain rate sensitivity of flow stress at low temperatures in 304n stainless steel, Int J Plastic, vol.8, 1992.

C. Gür and J. Pan, Handbook of thermal process modelling of steels, 2009.

A. Rusinek and J. R. Klepaczko, Shear testing of a sheet steel at wide range of strain rates and a constitutive relation with strain-rate and temperature dependence of the flow stress, Int J Plastic, vol.17, pp.20-26, 2001.

J. A. Rodríguez-martínez, A. Rusinek, and J. R. Klepaczko, Extension of R-K constitutive relation to phase transformation phenomena, Mater Des, vol.30, pp.2513-2533, 2009.

J. Z. Malinowski and J. R. Klepaczko, A unified analytic and numerical approach to specimen behaviour in the Split-Hopkinson pressure bar, Int J Mech Sci, vol.28, issue.86, pp.90057-90060, 1986.

Z. Xu, X. Ding, W. Zhang, and F. Huang, A novel method in dynamic shear testing of bulk materials using the traditional SHPB technique, Int J Impact Eng, vol.101, pp.90-104, 2017.

B. Jia, A. Rusinek, S. Bahi, R. Bernier, R. Pesci et al., Perforation behavior of 304 stainless steel plates at various temperatures, J Dyn Behav, vol.2019, pp.1-16
URL : https://hal.archives-ouvertes.fr/hal-02337472

. Comsol-a, COMSOL Multiphysics Reference Manual: Version 3.5. Stockholm, 2008.

L. E. Murr, K. P. Staudhammer, and S. S. Hecker, Effects of strain state and strain rate on deformation-induced transformation in 304 stainless steel: part II. Microstructural study, MTA, vol.13, pp.627-662, 1982.

S. S. Hecker, M. G. Stout, K. P. Staudhammer, and J. L. Smith, Effects of strain state and strain rate on deformation-induced transformation in 304 stainless steel: part I. Magnetic measurements and mechanical behavior, MTA, vol.13, pp.619-645, 1982.

S. Nemat-nasser and W. Guo, Mechanics of materials, vol.37, pp.379-405, 2005.

U. F. Kocks, A. S. Argon, and M. F. Ashby, Thermodynamics and kinetics of slip. Argonne National Laboratory, 1973.

J. R. Klepaczko, A. Rusinek, J. A. Rodríguez-martínez, . Rb, and A. Arias, Modelling of thermo-viscoplastic behaviour of DH-36 and Weldox 460-E structural steels at wide ranges of strain rates and temperatures, comparison of constitutive relations for impact problems, Mech Mater, vol.41, pp.599-621, 2009.

G. R. Johnson, A constitutive model and data for materials subjected to large strains, high strain rates, and high temperatures, Proc 7th Inf Sympo Ballistics, pp.541-547, 1983.

A. S. Khan and S. Huang, Experimental and theoretical study of mechanical behavior of 1100 aluminum in the strain rate range 10 ? 5 ? 104s ? 1, Int J Plastic, vol.8, pp.397-424, 1992.

D. Fields and W. Backofen, Determination of strain hardening characteristics by torsion testing, Proc ASTM, vol.57, pp.1259-72, 1957.

A. Molinari and G. Ravichandran, Constitutive modeling of high-strain-rate deformation in metals based on the evolution of an effective microstructural length, Mech Mater, vol.37, pp.737-52, 2005.

. Voce-e, The relationship between stress and strain for homogeneous deformation, J Inst Metals, vol.74, pp.537-62, 1948.

C. Zener and J. H. Hollomon, Effect of strain rate upon plastic flow of steel, J Appl Phys, vol.15, pp.22-32, 1944.

A. S. Khan, H. Zhang, and L. Takacs, Mechanical response and modeling of fully compacted nanocrystalline iron and copper, Int J Plastic, vol.16, pp.23-24, 2000.

A. S. Khan, S. Suh, Y. Kazmi, and R. , Quasi-static and dynamic loading responses and constitutive modeling of titanium alloys, Int J Plastic, vol.20, pp.2233-2281, 2004.

A. S. Khan, Y. S. Suh, X. Chen, L. Takacs, and H. Zhang, Nanocrystalline aluminum and iron: mechanical behavior at quasi-static and high strain rates, and constitutive modeling, Int J Plastic, vol.22, pp.195-209, 2006.

B. Farrokh and A. S. Khan, Grain size, strain rate, and temperature dependence of flow stress in ultra-fine grained and nanocrystalline Cu and Al: synthesis, experiment, and constitutive modeling, Int J Plastic, vol.25, pp.715-747, 2009.

F. J. Zerilli and R. W. Armstrong, Dislocation-mechanics-based constitutive relations for material dynamics calculations, J Appl Phys, vol.61, pp.1816-1841, 1987.

G. Z. Voyiadjis and A. H. Almasri, A physically based constitutive model for fcc metals with applications to dynamic hardness, Mech Mater, vol.40, pp.549-63, 2008.

S. R. Bodner and Y. Partom, Constitutive equations for elastic-viscoplastic strain-hardening materials, J Appl Mech, vol.42, pp.385-394, 1975.

Y. C. Lin, J. Zhang, and J. Zhong, Application of neural networks to predict the elevated temperature flow behavior of a low alloy steel, Comp Mater Sci, vol.43, pp.752-760, 2008.

Y. C. Lin and X. Chen, A critical review of experimental results and constitutive descriptions for metals and alloys in hot working, Mater Des, vol.32, pp.1733-59, 2011.

J. A. Rodríguez-martínez, R. Pesci, and A. Rusinek, Experimental study on the martensitic transformation in AISI 304 steel sheets subjected to tension under wide ranges of strain rate at room temperature, Mater Sci Eng A, vol.528, pp.5974-82, 2011.

G. B. Olson and M. Cohen, Kinetics of strain-induced martensitic nucleation, MTA, vol.6, p.791, 1975.

R. G. Stringfellow, D. M. Parks, and G. B. Olson, A constitutive model for transformation plasticity accompanying strain-induced martensitic transformations in metastable austenitic steels, Acta Metallurgica et Materialia, vol.40, pp.1703-1719, 1992.

T. Iwamoto, T. Tsuta, and Y. Tomita, Investigation on deformation mode dependence of strain-induced martensitic transformation in trip steels and modelling of transformation kinetics, Int J Mech Sci, vol.40, pp.47-54, 1998.

J. A. Rodríguez-martínez, A. Rusinek, R. Pesci, and R. Zaera, Experimental and numerical analysis of the martensitic transformation in AISI 304 steel sheets subjected to perforation by conical and hemispherical projectiles, Int J Solids Struct, vol.50, pp.339-51, 2013.

K. M. Kpenyigba, T. Jankowiak, A. Rusinek, and R. Pesci, Influence of projectile shape on dynamic behavior of steel sheet subjected to impact and perforation, Thin-Wall Struct, vol.65, pp.93-104, 2013.
URL : https://hal.archives-ouvertes.fr/hal-00952580

R. F. Recht and T. W. Ipson, Ballistic perforation dynamics, J Appl Mech, vol.30, pp.384-90, 1963.