. Détail-de-la-soudure-de-la, Details of the welding of the ferrule after an attack with, Nital, p.17

C. Courbe-expérimentale-d-'un-Échantillon-de and . Bakhshi, Stress-strain curve of CK67 specimen from Bakhshi et al, p.18

C. Calorimétrie-différentielle-À-balayage-du, Differential scanning calorimetry of the C68 steel, p.20

R. Sensibilité-de, . 12%, R. De, and L. 18%, vitesse de déformation à 25°C et fonction puissance correspondante Strain rate dependence of the equivalent stress at a plastic strain of 12 % and 18 % at 25°C and fitted power function, p.95

R. Effet-du-couplage-température-/-vitesse-de-déformation-sur, Coupling effect temperature/strain rate on the equivalent stress at 10 % of plastic strain, p.96

.. Comparaison-entre-le-modèle-de-johnsons, Cook et les données expérimentales de traction à différentes températures pour une vitesse de déformation de 1 × 10 ?1 /s. Comparison between the Johnson-Cook model and experimentals data at several temperatures with a strain rate of 1 × 10 ?1, p.100

. Comparaison-entre-le-modèle-de-johnson, Cook modifié et les données expérimentales de traction à différentes températures pour une vitesse de déformation de 1 × 10 ?1 /s. Comparison between the modified Johnson-Cook model and experimentals data at several temperatures with a strain rate of 1 × 10 ?1 /s

. Comparaison-entre-le-modèle-de-johnson, Cook modifié et les données expérimentales de traction à différentes températures pour une vitesse de déformation de 4 × 10 2 /s. Comparison between the modified Johnson-Cook model and experimentals data at several temperatures with a strain rate of 4 × 10 2 /s, p.104

.. Comparaison-entre-le-modèle-de-johnsons, Cook modifié et les données expérimentales de traction à 720°C pour une vitesse de déformation de 4 × 10 2 /s. Comparison between the modified Johnson-Cook model and experimentals data at 720°C with a strain rate of 4, p.105

.. Modélisation-proposée-par-hahn, Typical stress-strain curve proposed by Hahn [32] to describe the local plastic behavior, p.107

. Aperçu-du-début-de-la-loi-de-voce-généralisée.........., Glimpse of the beginning of the generalized Voce's law, p.107

.. Comparaison-entre-le-modèle-des, Voce modifié et les données expérimentales de traction à différentes températures pour une vitesse de déformation de 1 × 10 ?1 /s. Comparison between the modified Voce model and experimentals data at several temperatures with a strain rate at 1 × 10 ?1, p.109

.. Comparaison-entre-le-modèle-des, Voce modifié et les données expérimentales de traction à différentes températures pour une vitesse de déformation de 4 × 10 2 /s. Comparison between the modified Voce model and experimentals data at several temperatures with a strain rate at 4 × 10 2, p.110

.. Courbe-de-référence-contrainte-steel, 128 D.1 (a) Schématisation d'un système de barres d'Hopkinson, (b) Représentation réelle de barres d'Hopkinson et (c) Système de maintien de la barre incidente (point B sur le schéma) Schematization of a split Hopkinson tension bar system, Real representation of bars and (c) Holding system of the incident bar (B in the diagram)

. Courbe-expérimentale-force, Déplacement lors d'un essai de traction montrant la charge maximale F m

.. Paramètres-du-modèle-de-comportement-thermo-Élastique, Parameters of the thermo-elastic model, p.98

.. Paramètres-du-modèle-de-johnson-cook-associé-au-critère-de-von-mises, Parameters of Johnson-Cook's model with mixed isotropic and kinematic hardening with the von Mises' criterion, p.99

. Paramètres-du-modèle-de-johnson, Cook modifié associé au critère de von Mises Parameters of modified Johnson-Cook model with the von Mises' criterion, p.102

.. Paramètres-du-modèle-de-johnsons, Mises à 720°C pour une vitesse de déformation de 4 × 10 2 /s. Parameters of modified Johnson-Cook model with the von Mises' criterion at 720°C with a strain rate of 4, p.105

.. Paramètres-du-modèle-de-voce-modifié-associé-au-critère-de-von-mises, Parameters of modified Voce model with the von Mises' criterion, p.109

M. Anwander, B. G. Zagar, B. Weiss, and H. Weiss, Noncontacting strain measurements at high temperatures by the digital laser speckle technique, Experimental Mechanics, vol.36, issue.1, pp.98-105, 2000.
DOI : 10.1007/BF02327556

F. Augereau, V. Roque, L. Robert, and G. Despaux, Non-destructive testing by acoustic signature of damage level in 304L steel samples submitted to rolling, tensile test and thermal annealing treatments, Materials Science and Engineering: A, vol.266, issue.1-2, pp.285-294, 1999.
DOI : 10.1016/S0921-5093(98)01092-2

S. Avril, E. Ferrier, A. Vautrin, P. Hamelin, and Y. Surrel, A full-field optical method for the experimental analysis of reinforced concrete beams repaired with composites, Composites Part A: Applied Science and Manufacturing, vol.35, issue.7-8, pp.873-884, 2004.
DOI : 10.1016/j.compositesa.2004.01.012

C. Badulescu, M. Grédiac, D. Mathias, and . Roux, A Procedure for Accurate One-Dimensional Strain Measurement Using the Grid Method, Experimental Mechanics, vol.29, issue.7???8, pp.841-854, 2009.
DOI : 10.1007/s11340-008-9203-8

M. Bakhshi-jooybari, B. Rahmani, V. Daeezadeh, and A. Gorji, The study of spring-back of CK67 steel sheet in V-die and U-die bending processes, Materials & Design, vol.30, issue.7, pp.2410-2419, 2009.
DOI : 10.1016/j.matdes.2008.10.018

P. Balland, L. Tabourot, and M. Fivel, Comparison of physically based constitutive laws used for numerical simulations of plasticity of metals, 4th European Mechanics of Materials Conference on Processes, Microstructures and Mechanical Properties, pp.381-388, 2001.
URL : https://hal.archives-ouvertes.fr/hal-00179431

V. Ballarin, M. Soler, A. Perlade, X. Lemoine, and S. Forest, Mechanisms and Modeling of Bake-Hardening Steels: Part I. Uniaxial Tension, Metallurgical and Materials Transactions A, vol.26, issue.389, pp.1367-1374, 2009.
DOI : 10.1007/s11661-009-9813-5

URL : https://hal.archives-ouvertes.fr/hal-00390793

S. R. Bodner, Unified plasticity-an engineering approach, 2000.

S. R. Bodner and Y. Partom, Constitutive Equations for Elastic-Viscoplastic Strain-Hardening Materials, Journal of Applied Mechanics, vol.42, issue.2, pp.385-389, 1975.
DOI : 10.1115/1.3423586

S. Bouvier, H. Haddadi, P. Levée, and C. Teodosiu, Simple shear tests: Experimental techniques and characterization of the plastic anisotropy of rolled sheets at large strains, Journal of Materials Processing Technology, vol.172, issue.1, pp.96-103, 2006.
DOI : 10.1016/j.jmatprotec.2005.09.003

P. W. Bridgman, Studies in large plastic flow and fracture, 1952.
DOI : 10.4159/harvard.9780674731349

L. Bruno, G. Felice, L. Pagnotta, A. Poggialini, and G. Stigliano, Elastic characterization of orthotropic plates of any shape via static testing, International Journal of Solids and Structures, vol.45, issue.3-4, pp.3-4908, 2008.
DOI : 10.1016/j.ijsolstr.2007.09.017

S. C. Chang, C. A. Huang, S. Y. Yu, Y. Chang, W. C. Han et al., Tube spinnability of AA 2024 and 7075 aluminum alloys, Journal of Materials Processing Technology, vol.80, issue.81, pp.676-682, 1998.
DOI : 10.1016/S0924-0136(98)00174-5

A. H. Clausen and T. Auestad, Split-hopkinson tension bar : Experimental set-up and theoretical considerations, 2002.

R. M. Cleveland and A. K. Ghosh, Inelastic effects on springback in metals, International Journal of Plasticity, vol.18, issue.5-6, pp.769-785, 2002.
DOI : 10.1016/S0749-6419(01)00054-7

R. R. Cordero, M. François, I. Lira, and C. Vial-edwards, Whole-field analysis of uniaxial tensile tests by Moir?? interferometry, Optics and Lasers in Engineering, vol.43, issue.9, pp.919-936, 2005.
DOI : 10.1016/j.optlaseng.2004.10.002

E. Cosola, K. Genovese, L. Lamberti, and C. Pappalettere, A general framework for identification of hyper-elastic membranes with moir?? techniques and multi-point simulated annealing, International Journal of Solids and Structures, vol.45, issue.24, pp.456074-6099, 2008.
DOI : 10.1016/j.ijsolstr.2008.07.019

T. Coudert, Reconstruction tridimensionnelle du volume intérieur d'une chaussure : évaluation du chaussant, 2005.

F. Degré, Prédiction numérique des caractéristiques d'une pièce traitée par galetage, 2011.

C. Déprés, C. Manole, P. Balland, F. Degré, L. Tabourot et al., Plasticity of cristalline materials : from dislocations to continuum, 2011.

C. Dudescu, J. Naumann, M. Stockmann, and S. Nebel, Characterisation of Thermal Expansion Coefficient of Anisotropic Materials by Electronic Speckle Pattern Interferometry, Strain, vol.56, issue.3, pp.197-205, 2006.
DOI : 10.1111/j.1475-1305.2006.00271.x

S. Dumoulin, L. Tabourot, C. Chappuis, P. Vacher, and R. Arrieux, Determination of the equivalent stress???equivalent strain relationship of a copper sample under tensile loading, Journal of Materials Processing Technology, vol.133, issue.1-2, pp.79-83, 2003.
DOI : 10.1016/S0924-0136(02)00247-9

URL : https://hal.archives-ouvertes.fr/hal-00258215

P. A. Eggertsen and K. Mattiasson, Experiences from experimental and numerical springback studies of a semi-industrial forming tool, International Journal of Material Forming, vol.1, issue.4, pp.1-19, 2011.
DOI : 10.1007/s12289-011-1052-9

J. C. Gélin, S. Thibaut, and N. Boudeau, Modelling and simulation of the influence of forming processes on the structural behavior of high strength steels, AIP Conference Proceedings, pp.101-106, 2005.
DOI : 10.1063/1.2011201

B. M. Grant, H. J. Stone, P. J. Withers, and M. Preuss, High-temperature strain field measurement using digital image correlation, The Journal of Strain Analysis for Engineering Design, vol.43, issue.4, pp.263-271, 2009.
DOI : 10.1243/03093247JSA478

R. Grèze, Étude expérimentale et numérique du retour élastique des alliages d'aluminium après emboutissage, 2009.

Z. Gronostajski, The constitutive equations for FEM analysis, Journal of Materials Processing Technology, vol.106, issue.1-3, pp.40-44, 2000.
DOI : 10.1016/S0924-0136(00)00635-X

G. T. Hahn, A model for yielding with special reference to the yield-point phenomena of iron and related bcc metals, Acta Metallurgica, vol.10, issue.8, pp.727-738, 1962.
DOI : 10.1016/0001-6160(62)90041-X

P. Hähner, Theory of solitary plastic waves, Applied Physics A Solids and Surfaces, vol.64, issue.24, pp.41-48, 1994.
DOI : 10.1007/BF00331515

E. O. Hall, Yield point phenomena in metals and alloys, 1970.
DOI : 10.1007/978-1-4684-1860-6

J. Harding, E. O. Wood, and J. D. Campbell, Tensile testing of materials at impact rates of strain, ARCHIVE: Journal of Mechanical Engineering Science 1959-1982 (vols 1-23), vol.2, issue.2, pp.88-96, 1960.
DOI : 10.1243/JMES_JOUR_1960_002_016_02

K. Heritage, C. Frisby, and A. Wolfenden, Impulse excitation technique for dynamic flexural measurements at moderate temperature, Review of Scientific Instruments, vol.59, issue.6, pp.973-974, 1988.
DOI : 10.1063/1.1139761

J. H. Hollomon, Tensile deformation, AIME TRANS, vol.12, issue.4, pp.1-22, 1945.

M. Houillon, Modélisation du procédé de fluotournage du tantale et du traitement thermique associé, 2009.

H. Huh, W. J. Kang, and S. S. Han, A tension split Hopkinson bar for investigating the dynamic behavior of sheet metals, Experimental Mechanics, vol.105, issue.5, pp.8-17, 2002.
DOI : 10.1007/BF02411046

G. R. Johnson and W. H. Cook, A constitutive model and data for metals subjected to large strains, high strain rates and high temperatures, Proceedings of the 7th International Symposium on Ballistics The Hague, Netherlands : International Ballistics Committee, pp.541-547, 1983.

W. G. Johnson and J. J. Gilman, Dislocation Velocities, Dislocation Densities, and Plastic Flow in Lithium Fluoride Crystals, Journal of Applied Physics, vol.30, issue.2, pp.129-144, 1959.
DOI : 10.1063/1.1735121

S. Kalpakcioglu, On the Mechanics of Shear Spinning, Journal of Engineering for Industry, vol.83, issue.2, pp.125-130, 1961.
DOI : 10.1115/1.3664441

S. Kalpakjian and S. , Spinning of tubes: A review, Journal of Applied Metalworking, vol.10, issue.2, pp.211-223, 1982.
DOI : 10.1007/BF02834039

H. Kolsky, An Investigation of the Mechanical Properties of Materials at very High Rates of Loading, Proceedings of the Physical Society. Section B, vol.62, issue.11, pp.676-700, 1949.
DOI : 10.1088/0370-1301/62/11/302

S. Koss, Écrouissage isotrope et anisotrope des aciers laminés soumis à de grandes déformations, 1992.

W. T. Lankford, S. C. Snyder, and J. A. Bausher, New criteria for predicting the press performance of deep drawing sheets, Transactions of the American Society of Metals, vol.42, pp.1197-1205, 1950.

B. A. Latella and S. R. Humphries, Young???s modulus of a 2.25Cr???1Mo steel at elevated temperature, Scripta Materialia, vol.51, issue.7, pp.635-639, 2004.
DOI : 10.1016/j.scriptamat.2004.06.028

G. , L. Roy, J. D. Embury, G. Edwards, and M. F. Ashby, A model of ductile fracture based on the nucleation and growth of voids, Acta Metallurgica, issue.8, pp.291509-1522, 1981.

J. Lemaitre, J. L. Chaboche, A. Benallal, and R. Desmorat, Mécanique des matériaux solides, 2009.

J. Liu, J. Lyons, M. A. Sutton, and A. Reynolds, Experimental Characterization of Crack Tip Deformation Fields in Alloy 718 at High Temperatures, Journal of Engineering Materials and Technology, vol.120, issue.1, pp.71-78, 1998.
DOI : 10.1115/1.2806840

J. Liu, M. A. Sutton, J. S. Lyons, X. J. Deng52-]-o, J. T. Løckberg et al., Experimental investigation of near crack tip creep deformation in alloy 800 at 650 ? C Interferometric measurement of high temperature objects by electronic speckle pattern interferometry, International Journal of Fracture, vol.91, issue.3, pp.233-268, 1985.
DOI : 10.1023/A:1007485813696

W. M. Lomer, The yield phenomenon in polycrystalline mild steel, Journal of the Mechanics and Physics of Solids, vol.1, issue.1, pp.64-73, 1952.
DOI : 10.1016/0022-5096(52)90007-0

W. Lüders, Über die äusserung der elasticität an stahlartigen eisenstäben und stahlstäben , und über eine beim biegen solcher stäbe beobachtete molecularbewegung. Dingler's Polytechnic Journal, pp.18-22, 1860.

P. Ludwick, Elemente der technologischen mechanik, 1909.
DOI : 10.1007/978-3-662-40293-1

J. S. Lyons, J. Liu, and M. A. Sutton, High-temperature deformation measurements using digital-image correlation, Experimental Mechanics, vol.33, issue.2, pp.64-70, 1996.
DOI : 10.1007/BF02328699

H. Mahbadi and M. Eslami, Cyclic loading of thick vessels based on the Prager and Armstrong???Frederick kinematic hardening models, International Journal of Pressure Vessels and Piping, vol.83, issue.6, pp.409-419, 2006.
DOI : 10.1016/j.ijpvp.2006.02.031

Z. Marciniak and J. Kolodziejski, Assessment of sheet metal failure sensitivity by method of torsioning the rings, Proceedings of the 7th Biannual Congr, pp.6-61, 1972.

J. D. Mathias, X. Balandraud, and M. Grédiac, Experimental investigation of composite patches with a full-field measurement method, Composites Part A: Applied Science and Manufacturing, vol.37, issue.2, pp.177-190, 2006.
DOI : 10.1016/j.compositesa.2005.04.017

A. K. Miller, An Inelastic Constitutive Model for Monotonic, Cyclic, and Creep Deformation: Part I???Equations Development and Analytical Procedures, Journal of Engineering Materials and Technology, vol.98, issue.2, pp.97-113, 1976.
DOI : 10.1115/1.3443367

F. Morestin and M. Boivin, On the necessity of taking into account the variation in the Young modulus with plastic strain in elastic-plastic software, Nuclear Engineering and Design, vol.162, issue.1, pp.107-116, 1996.
DOI : 10.1016/0029-5493(95)01123-4

F. Morestin, M. Boivin, and C. Silva, Elasto plastic formulation using a kinematic hardening model for springback analysis in sheet metal forming, Journal of Materials Processing Technology, vol.56, issue.1-4, pp.619-630, 1996.
DOI : 10.1016/0924-0136(95)01876-X

C. L. Packam, Metal spinning and shear and flow forming. Metallurgia and Metal Forming, pp.250-253, 1976.

B. Pan, D. Wu, and Y. Xia, High-temperature deformation field measurement by combining transient aerodynamic heating simulation system and reliability-guided digital image correlation, Optics and Lasers in Engineering, vol.48, issue.9, pp.841-848, 2010.
DOI : 10.1016/j.optlaseng.2010.04.007

G. Piobert, I. Morin, and . Didion, Commission des principes du tir. Mémorial de l'artillerie, pp.501-552

D. Post and J. D. Wood, Determination of thermal strains by moir?? interferometry, Experimental Mechanics, vol.29, issue.2, pp.318-322, 1989.
DOI : 10.1007/BF02321415

T. Pottier, Identification paramétrique par recalage de modèles éléments finis couplée à des mesures de champs cinématiques et thermiques, 2010.

V. Pouzols, Optimisation d'opérations industrielles de pliage par la méthode des éléments finis, 2010.

E. S. Cabrera, High temperature deformation of 316L stainless steel, Materials Science and Technology, vol.29, issue.2, pp.155-161, 2001.
DOI : 10.1016/0001-6160(87)90265-3

E. F. Rauch and C. , Flow localization induced by a change in strain path in mild steel, Materials Science and Engineering: A, vol.111, pp.71-80, 1989.
DOI : 10.1016/0921-5093(89)90199-8

J. Raujol-veillé, F. Toussaint, L. Tabourot, M. Vautrot, and P. Balland, EF simulation of a steel thin-wall short-tube forming process, AIP Conference Proceedings, p.258, 2011.

G. Roebben, B. Bollen, A. Brebels, J. Van-humbeeck, and O. Van-der-biest, Impulse excitation apparatus to measure resonant frequencies, elastic moduli, and internal friction at room and high temperature, Review of Scientific Instruments, vol.68, issue.12, pp.684511-4515, 1997.
DOI : 10.1063/1.1148422

I. Rohr, H. Nahme, and K. Thoma, Material characterization and constitutive modelling of ductile high strength steel for a wide range of strain rates, International Journal of Impact Engineering, vol.31, issue.4, pp.401-433, 2005.
DOI : 10.1016/j.ijimpeng.2004.02.005

M. Runge, Spinning and flow forming, 1994.

M. Runge, Spinning and flowing forming, Leico GmbH, 1997.

W. J. Ryu, Y. J. Kang, S. H. Baik, and S. J. Kang, A study on the 3-D measurement by using digital projection moir?? method, Optik - International Journal for Light and Electron Optics, vol.119, issue.10, pp.453-458, 2008.
DOI : 10.1016/j.ijleo.2006.12.016

A. Saai, Modèle physique de la plasticité d'un cristal métallique CFC soumis à des chargements alternés : Contribution à la définition d'une modélisation multiéchelles de la mise en forme des métaux Effect of dynamic strain aging on mechanical and fracture properties of A516Gr70 steel, International Journal of Pressure Vessels and Piping, issue.14, pp.76945-953, 1999.

W. N. Sharpe, A High-frequency High-temperature Optical Strain/Displacement Gage, Experimental Mechanics, vol.103, issue.2, pp.227-237, 2009.
DOI : 10.1007/s11340-009-9278-x

W. N. Sharpe-jr, B. Yuan, R. Vaidyanathan, and R. L. Edwards, Measurements of Young's modulus, Poisson's ratio, and tensile strength of polysilicon, Proceedings IEEE The Tenth Annual International Workshop on Micro Electro Mechanical Systems. An Investigation of Micro Structures, Sensors, Actuators, Machines and Robots, pp.424-429, 1997.
DOI : 10.1109/MEMSYS.1997.581881

M. Sjödahl, Some recent advances in electronic speckle photography, Optics and Lasers in Engineering, vol.29, issue.2-3, pp.125-144, 1998.
DOI : 10.1016/S0143-8166(97)00081-X

B. Song and W. Chen, Dynamic stress equilibration in split Hopkinson pressure bar tests on soft materials, Experimental Mechanics, vol.77, issue.3, pp.300-312, 2004.
DOI : 10.1007/BF02427897

M. Spittel and T. Spittel, SpringerMaterials -The Landolt-Börnstein Database, chapter Steel symbol/number : C67/1.0603, 2009.

Y. Surrel, Les techniques optiques de mesure de champ : essai de classification, pp.11-42, 2004.

V. Tarigopula, O. S. Hopperstad, A. Clausen, and M. Langseth, Effect of pre-straining on localisation and fracture of dual-phase steel at elevated rates of strain, DYMAT 2009, 9th International Conferences on the Mechanical and Physical Behaviour of Materials under Dynamic Loading, pp.801-807, 2009.
DOI : 10.1051/dymat/2009112

V. Tarigopula, O. S. Hopperstad, M. Langseth, A. H. Clausen, and F. Hild, A study of localisation in dual-phase high-strength steels under dynamic loading using digital image correlation and FE analysis, International Journal of Solids and Structures, vol.45, issue.2, pp.601-619, 2008.
DOI : 10.1016/j.ijsolstr.2007.08.021

URL : https://hal.archives-ouvertes.fr/hal-00200976

V. Tarigopula, M. Langseth, O. S. Hopperstad, and A. H. Clausen, Axial crushing of thin-walled high-strength steel sections, International Journal of Impact Engineering, vol.32, issue.5, pp.847-882, 2006.
DOI : 10.1016/j.ijimpeng.2005.07.010

A. E. Tekkaya, K. Pöhlandt, and K. Lange, Determining Stress-Strain Curves of Sheet Metal in the Plane Torsion Test, CIRP Annals - Manufacturing Technology, vol.31, issue.1, pp.171-174, 1982.
DOI : 10.1016/S0007-8506(07)63291-0

N. Temimi-maaref, Comportement thermo-mécanique et rupture de polypropylènes. Etude expérimentale et modélisation, 2006.

S. Thuillier and P. Y. Manach, Comparison of the work-hardening of metallic sheets using tensile and shear strain paths, International Journal of Plasticity, vol.25, issue.5, pp.733-751, 2009.
DOI : 10.1016/j.ijplas.2008.07.002

URL : https://hal.archives-ouvertes.fr/hal-00404007

H. Tsukahara and T. Iung, Finite element simulation of the Piobert???L??ders behavior in an uniaxial tensile test, Materials Science and Engineering: A, vol.248, issue.1-2, pp.304-308, 1998.
DOI : 10.1016/S0921-5093(97)00857-5

P. Vacher, S. Dumoulin, F. Morestin, and S. , Bidimensional strain measurement using digital images, Proceedings of the Institution of Mechanical Engineers, pp.811-817, 1999.
DOI : 10.1243/0954406991522428

P. Vacher, A. Haddad, and R. Arrieux, Determination of the Forming Limit Diagrams Using Image Analysis by the Corelation Method, CIRP Annals - Manufacturing Technology, vol.48, issue.1, pp.227-230, 1999.
DOI : 10.1016/S0007-8506(07)63171-0

M. Verdier, Y. Brechet, and P. Guyot, Recovery of AlMg alloys: flow stress and strain-hardening properties, Acta Materialia, vol.47, issue.1, pp.127-134, 1998.
DOI : 10.1016/S1359-6454(98)00350-4

P. Verleysen and J. Degrieck, Experimental investigation of the deformation of Hopkinson bar specimens, International Journal of Impact Engineering, vol.30, issue.3, pp.239-253, 2004.
DOI : 10.1016/S0734-743X(03)00069-1

E. Voce, The relationship between stress and strain for homogeneous deformation, Journal of the Institute for Metals, vol.74, pp.537-562, 1948.

R. Völkl and B. Fischer, Mechanical testing of ultra-high temperature alloys, Experimental Mechanics, vol.338, issue.1, pp.121-127, 2004.
DOI : 10.1007/BF02428171

R. Völkl, B. Fischer, M. Beschliesser, and U. Glatzel, Evaluating strength at ultra-high temperatures???Methods and results, Materials Science and Engineering: A, vol.483, issue.484, pp.483-484587, 2008.
DOI : 10.1016/j.msea.2006.09.171

D. Wagner, J. C. Moreno, and C. Prioul, Dynamic strain aging sensitivity of heat affected zones in C???Mn steels, Journal of Nuclear Materials, vol.252, issue.3, pp.257-265, 1998.
DOI : 10.1016/S0022-3115(97)00279-1

D. Wagner, J. C. Moreno, C. Prioul, J. M. Frund, and B. Houssin, Influence of dynamic strain aging on the ductile tearing of C???Mn steels: modelling by a local approach method, Journal of Nuclear Materials, vol.300, issue.2-3, pp.178-191, 2002.
DOI : 10.1016/S0022-3115(01)00746-2

Y. Wang, Y. Zhou, and Y. Xia, A constitutive description of tensile behavior for brass over a wide range of strain rates, Materials Science and Engineering: A, vol.372, issue.1-2, pp.186-190, 2004.
DOI : 10.1016/j.msea.2003.12.009

C. C. Wong, T. A. Dean, J. L. Xu, S. H. Zhang, P. Li et al., A review of spinning, shear forming and flow forming processes 3D rigid?plastic FEM numerical simulation on tube spinning, International Journal of Machine Tools and Manufacture Journal of Materials Processing Technology, vol.43105, issue.1131, pp.1419-1435710, 2001.

I. Yamaguchi, Holography, speckle, and computers, Optics and Lasers in Engineering, vol.39, issue.4, pp.411-429, 2003.
DOI : 10.1016/S0143-8166(02)00024-6

K. Yamaguchi, H. Adachi, and N. Takakura, Effects of plastic strain and strain path on youngs modulus of sheet metals, Metals and Materials International, pp.420-425, 1998.

M. Yang, Y. Akiyama, and T. Sasaki, Evaluation of change in material properties due to plastic deformation, Journal of Materials Processing Technology, vol.151, issue.1-3, pp.232-236, 2004.
DOI : 10.1016/j.jmatprotec.2004.04.114

F. Yoshida and T. Uemori, A model of large-strain cyclic plasticity and its application to springback simulation, International Journal of Mechanical Sciences, vol.45, issue.10, pp.1687-1702, 2003.
DOI : 10.1016/j.ijmecsci.2003.10.013

F. Yoshida, T. Uemori, and K. Fujiwara, Elastic???plastic behavior of steel sheets under in-plane cyclic tension???compression at large strain, International Journal of Plasticity, vol.18, issue.5-6, pp.633-659, 2002.
DOI : 10.1016/S0749-6419(01)00049-3

S. L. Zang, J. Liang, and C. Guo, A constitutive model for spring-back prediction in which the change of Young modulus with plastic deformation is considered, International Journal of Machine Tools and Manufacture, issue.11, pp.471791-1797, 2007.

H. Zhang, W. Wen, and H. Cui, Behaviors of IC10 alloy over a wide range of strain rates and temperatures: Experiments and modeling, Materials Science and Engineering: A, vol.504, issue.1-2, pp.99-103, 2009.
DOI : 10.1016/j.msea.2008.10.056

J. Zhang and Y. Jiang, L???ders bands propagation of 1045 steel under multiaxial stress state, International Journal of Plasticity, vol.21, issue.3, pp.651-670, 2005.
DOI : 10.1016/j.ijplas.2004.05.001

Z. L. Zhang, M. Hauge, J. Ødegård, and C. Thaulow, Determining material true stress???strain curve from tensile specimens with rectangular cross-section, International Journal of Solids and Structures, vol.36, issue.23, pp.3497-3516, 1999.
DOI : 10.1016/S0020-7683(98)00153-X

H. Ziegler, A modification of Prager???s hardening rule, Quarterly of Applied Mathematics, vol.17, issue.1, pp.55-65, 1959.
DOI : 10.1090/qam/104405