S. Grasso, Y. Sakka, and G. Maizza, Electric current activated/assisted sintering (ECAS): a review of patents 1906?2008. Science and thechnology of advanced materials, p.10, 2009.

Z. A. Munir, U. Anselmi-tamburini, and M. Ohyanagi, The effect of electric field and pressure on the synthesis and consolidation of materials: A review of the spark plasma sintering method, Journal of Materials Science, vol.19, issue.452, pp.763-777, 2006.
DOI : 10.1016/j.msea.2004.11.019

Z. A. Munir and D. V. Quach, Electric Current Activation of Sintering: A Review of the Pulsed Electric Current Sintering Process, Journal of the American Ceramic Society, vol.20, issue.[4], pp.1-19, 2011.
DOI : 10.1002/adma.200700715

F. V. Lenel, Resistance Sintering Under Pressure, JOM, vol.39, issue.1, pp.158-167, 1955.
DOI : 10.1007/BF03377473

R. Orrù, R. Licheri, A. M. Locci, A. Cincotti, and G. Cao, Consolidation/synthesis of materials by electric current activated/assisted sintering, Materials Science and Engineering: R: Reports, vol.63, issue.4-6, pp.4-6, 2009.
DOI : 10.1016/j.mser.2008.09.003

M. Tokita, Mechanisms of Spark Plasma Sintering. in International Symposium on microwae plasma and thermomechanical processing of advanced materials, Chapter 11.2.3 -Spark Plasma Sintering (SPS) Method, Systems, and Applications Handbook of Advanced Ceramics, pp.1149-1177, 1997.

C. Estournes, E. A. Olevsky, S. Kandukuri, L. Froyen, E. A. et al., Mise en forme de matériaux par frittage flash Techniques de l'ingénieur Consolidation enhancement in spark-plasma sintering: Impact of high heating rates, Journal of applied physics Impact of Thermal Diffusion on Densification During SPS. Journal of the American Ceramic Society, vol.92, pp.122-132, 2006.

U. Anselmi-tamburini, J. E. Garay, and Z. A. Munir, Fundamental investigations on the spark plasma sintering/synthesis process, Materials Science and Engineering: A, vol.407, issue.1-2, pp.24-30, 2005.
DOI : 10.1016/j.msea.2005.06.066

W. Chen, U. Anselmi-tamburini, J. E. Garay, J. R. Groza, and Z. A. Munir, Fundamental investigations on the spark plasma sintering/synthesis process, Materials Science and Engineering: A, vol.394, issue.1-2, pp.132-138, 2005.
DOI : 10.1016/j.msea.2004.11.020

R. Chaim, Electric field effects during spark plasma sintering of ceramic nanoparticles, Journal of Materials Science, vol.475, issue.1, pp.502-510, 2013.
DOI : 10.1016/j.msea.2007.01.162

U. Anselmi-tamburini, S. Gennari, J. E. Garay, and Z. A. Munir, Fundamental investigations on the spark plasma sintering/synthesis process, Materials Science and Engineering: A, vol.394, issue.1-2, pp.139-148, 2005.
DOI : 10.1016/j.msea.2004.11.019

C. M. Carney and T. Mah, Current Isolation in Spark Plasma Sintering of Conductive and Nonconductive Ceramics, Journal of the American Ceramic Society, vol.84, issue.[12], pp.91-3448, 2008.
DOI : 10.1111/j.1551-2916.2008.02630.x

K. Vanmeensel, A. Laptev, J. Hennicke, J. Vleugels, and O. , Van der Biest, Modelling of the temperature distribution during field assisted sintering, Acta Materialia, issue.16, pp.53-4379, 2005.

S. Song, Z. Wang, and G. Shi, Heating mechanism of spark plasma sintering, Ceramics International, vol.39, issue.2, p.2012
DOI : 10.1016/j.ceramint.2012.07.080

A. Zavaliangos, J. Zhang, M. Krammer, and J. R. Groza, Temperature evolution during field activated sintering, Materials Science and Engineering: A, vol.379, issue.1-2, pp.218-228, 2004.
DOI : 10.1016/j.msea.2004.01.052

D. Tiwari, B. Basu, and K. Biswas, Simulation of thermal and electric field evolution during spark plasma sintering, Ceramics International, vol.35, issue.2, pp.699-708, 2009.
DOI : 10.1016/j.ceramint.2008.02.013

P. Mondalek, L. Silva, and M. Bellet, Modélisation numérique des phénomènes de chauffage et de densification durant le procédé de frittage flash, CSMA 2011 10e Colloque National en Calcul des Structures2011: Presqu'île Modélisation numérique des phénomènes de Giens (Var)

K. Vanmeensel, A. Laptev, O. Van-der-biest, and J. Vleugels, The influence of percolation during pulsed electric current sintering of ZrO2???TiN powder compacts with varying TiN content, Acta Materialia, vol.55, issue.5, pp.55-1801, 2007.
DOI : 10.1016/j.actamat.2006.10.042

R. S. Dobedoe, G. D. West, and M. H. Lewis, Spark plasma sintering of ceramics: understanding temperature distribution enables more realistic comparison with conventional processing, Advances in Applied Ceramics, vol.78, issue.3, 2005.
DOI : 10.1557/JMR.2000.0140

H. Kim, K. Kawahara, and M. Tokita, Specimen Temperature and Sinterability of Ni Powder by Spark Plasma Sintering., Journal of the Japan Society of Powder and Powder Metallurgy, vol.47, issue.8, pp.47-887, 2000.
DOI : 10.2497/jjspm.47.887

M. Omori, Sintering, consolidation, reaction and crystal growth by the spark plasma system (SPS) Materials Science and Engineering: A, pp.183-188, 2000.

D. M. Hulbert, A. Anders, D. V. Dudina, J. Andersson, D. Jiang et al., The absence of plasma in ???spark plasma sintering???, Journal of Applied Physics, vol.9, issue.3, p.104, 2008.
DOI : 10.1063/1.2822189

D. M. Hulbert, A. Anders, J. Andersson, E. J. Lavernia, and A. K. Mukherjeea, A discussion on the absence of plasma in spark plasma sintering, Scripta Materialia, vol.60, issue.10, pp.835-838, 2009.
DOI : 10.1016/j.scriptamat.2008.12.059

J. Räthel, M. Herrmann, and W. Beckert, Temperature distribution for electrically conductive and non-conductive materials during Field Assisted Sintering (FAST), Journal of the European Ceramic Society, vol.29, issue.8, pp.29-1419, 2009.
DOI : 10.1016/j.jeurceramsoc.2008.09.015

S. W. Wang, L. D. Chen, T. Hirai, and Y. S. Kang, Microstructure inhomogeneity in Al2O3 sintered bodies formed during the plasma-activated sintering process, Journal of Materials Science Letters, vol.18, issue.14, pp.1119-1121, 1999.
DOI : 10.1023/A:1006684631127

X. Y. Song, X. M. Liu, and J. X. Zhang, Neck Formation and Self-Adjusting Mechanism of Neck Growth of Conducting Powders in Spark Plasma Sintering, Journal of the American Ceramic Society, vol.87, issue.2, pp.494-500, 2006.
DOI : 10.1016/j.actamat.2005.05.042

G. Ji, T. Grosdidier, N. Bozzolo, and S. Launois, The mechanisms of microstructure formation in a nanostructured oxide dispersion strengthened FeAl alloy obtained by spark plasma sintering, Intermetallics, vol.15, issue.2, pp.108-118, 2007.
DOI : 10.1016/j.intermet.2006.03.006

URL : https://hal.archives-ouvertes.fr/hal-00121287

T. Grosdidier, G. Ji, and S. Launois, Processing dense hetero-nanostructured metallic materials by spark plasma sintering, Scripta Materialia, vol.57, issue.6, pp.525-528, 2007.
DOI : 10.1016/j.scriptamat.2007.05.022

URL : https://hal.archives-ouvertes.fr/hal-00172240

M. Demuynck, J. Erauw, O. V. Biest, F. Delannay, and F. Cambier, Densification of alumina by SPS and HP: A comparative study, Journal of the European Ceramic Society, vol.32, issue.9, 2011.
DOI : 10.1016/j.jeurceramsoc.2011.10.031

J. M. Frei, U. Anselmi-tamburini, and Z. A. Munir, Current effects on neck growth in the sintering of copper spheres to copper plates by the pulsed electric current method, Journal of Applied Physics, vol.23, issue.11, pp.101-114914, 2007.
DOI : 10.1103/PhysRevB.57.14891

U. Anselmi-tamburini, J. E. Garay, and Z. A. Munir, Fast low-temperature consolidation of bulk nanometric ceramic materials, Scripta Materialia, vol.54, issue.5, pp.823-828, 2006.
DOI : 10.1016/j.scriptamat.2005.11.015

M. Cologna, B. Rashkova, and R. Raj, Flash Sintering of Nanograin Zirconia in <5 s at 850??C, Journal of the American Ceramic Society, vol.71, issue.[8], pp.93-3556, 2010.
DOI : 10.1111/j.1744-7402.2009.02390.x

J. S. Francis and R. Raj, Flash-Sinterforging of Nanograin Zirconia: Field Assisted Sintering and Superplasticity, Journal of the American Ceramic Society, vol.47, issue.12, pp.138-146, 2012.
DOI : 10.1016/S1359-6454(99)00206-2

U. Anselmi-tamburini, J. E. Garay, Z. A. Munir, A. Tacca, F. Maglia et al., Spark plasma sintering and characterization of bulk nanostructured fully stabilized zirconia: Part I. Densification studies, Journal of Materials Research, vol.19, issue.11, pp.3255-3262, 2004.
DOI : 10.1557/JMR.2004.0423

L. Cheng, Z. Xie, G. Liu, W. Liu, and W. Xue, Densification and mechanical properties of TiC by SPS-effects of holding time, sintering temperature and pressure condition, Journal of the European Ceramic Society, vol.32, issue.12, pp.32-3399, 2012.
DOI : 10.1016/j.jeurceramsoc.2012.04.017

R. Chaim, Densification mechanisms in spark plasma sintering of nanocrystalline ceramics, Materials Science and Engineering: A, vol.443, issue.1-2, pp.25-32, 2007.
DOI : 10.1016/j.msea.2006.07.092

S. Grasso, Y. Sakka, G. Maizza, and C. Hu, Pressure Effect on the Homogeneity of Spark Plasma-Sintered Tungsten Carbide Powder, Journal of the American Ceramic Society, vol.92, issue.10, pp.92-2418, 2009.
DOI : 10.1111/j.1551-2916.2009.03211.x

F. Guillard, A. Allemand, J. Lulewicz, and J. Galy, Densification of SiC by SPS-effects of time, temperature and pressure, Journal of the European Ceramic Society, vol.27, issue.7, pp.27-2725, 2007.
DOI : 10.1016/j.jeurceramsoc.2006.10.005

M. Reddy, K. , N. Kumar, and B. Basu, Innovative multi-stage spark plasma sintering to obtain strong and tough ultrafine-grained ceramics, Scripta Materialia, issue.7, pp.62-435, 2010.

S. Diouf and A. Molinari, Densification mechanisms in spark plasma sintering: Effect of particle size and pressure, Powder Technology, vol.221, issue.0, pp.220-227, 2012.
DOI : 10.1016/j.powtec.2012.01.005

J. G. Santanach, A. Weibel, C. Estournès, Q. Yang, C. Laurent et al., Spark plasma sintering of alumina: Study of parameters, formal sintering analysis and hypotheses on the mechanism(s) involved in densification and grain growth, Acta Materialia, vol.59, issue.4, pp.1400-1408, 2011.
DOI : 10.1016/j.actamat.2010.11.002

Z. Zhaohui, W. Fuchi, W. Lin, L. Shukui, and S. Osamu, Sintering mechanism of large-scale ultrafine-grained copper prepared by SPS method, Materials Letters, vol.62, issue.24, pp.62-3987, 2008.
DOI : 10.1016/j.matlet.2008.05.036

G. Skandan, H. Hahn, B. H. Kear, M. Roddy, and W. R. Cannon, The effect of applied stress on densification of nanostructured zirconia during sinter-forging, Materials Letters, vol.20, issue.5-6, pp.5-6, 1994.
DOI : 10.1016/0167-577X(94)90035-3

S. L. Kang, Sintering -Densification, Grain Growth, and Microstructure

M. Reddy, K. , N. Kumar, and B. Basu, Inhibition of grain growth during the final stage of multi-stage spark plasma sintering of oxide ceramics, Scripta Materialia, issue.6, pp.63-585, 2010.

S. Grasso, C. Hu, G. Maizza, B. Kim, and Y. Sakka, Effects of Pressure Application Method on Transparency of Spark Plasma Sintered Alumina, Journal of the American Ceramic Society, vol.43, issue.5, pp.94-1405, 2011.
DOI : 10.1007/s10853-008-2744-5

C. Wang, X. Wang, and Z. Zhao, Microstructure homogeneity control in spark plasma sintering of Al2O3 ceramics, Journal of the European Ceramic Society, vol.31, issue.1-2, pp.31-32, 2011.
DOI : 10.1016/j.jeurceramsoc.2010.08.015

O. Zgalat-lozynskyy, M. Herrmann, and A. Ragulya, Spark plasma sintering of TiCN nanopowders in non-linear heating and loading regimes, Journal of the European Ceramic Society, vol.31, issue.5, pp.31-809, 2011.
DOI : 10.1016/j.jeurceramsoc.2010.11.030

R. D. Doherty, D. A. Hughes, F. J. Humphreys, J. J. Jonas, D. Jensen et al., Current issues in recrystallization: A review, Materials Today, vol.1, issue.2, pp.14-15, 1998.
DOI : 10.1016/S1369-7021(98)80046-1

J. R. Groza, Nanocrystalline Powder Consolidation Methods, Nanostructured materials. Processing, pp.173-58, 2007.
DOI : 10.1016/B978-081551534-0.50007-5

F. Maglia, U. Anselmi-tamburini, G. Chiodelli, H. E. Çamurlu, M. Dapiaggi et al., Electrical, structural, and microstructural characterization of nanometric La0.9Sr0.1Ga0.8Mg0.2O3????? (LSGM) prepared by high-pressure spark plasma sintering, Solid State Ionics, vol.180, issue.1, pp.36-40, 2004.
DOI : 10.1016/j.ssi.2008.10.005

U. S. Lindholm and W. Johnson, Techniques in material research The Dynamic Compaction of Powdered Materials, Intescience Materials science and Engineering, vol.30, pp.121-139, 1971.

H. Kolsky, Stress waves in solids, Journal of Sound and Vibration, vol.1, issue.1, pp.88-110, 1964.
DOI : 10.1016/0022-460X(64)90008-2

T. Sano, K. Kato, and H. Takeishi, Analysis of dynamic deformation mechanisms in powder metals, Journal of Materials Processing Technology, vol.48, issue.1-4, pp.1-4, 1995.
DOI : 10.1016/0924-0136(94)01674-P

A. Rusinek and J. R. Klepaczko, Experiments on heat generated during plastic deformation and stored energy for TRIP steels, Materials & Design, vol.30, issue.1, pp.35-48, 2009.
DOI : 10.1016/j.matdes.2008.04.048

N. N. Thadhani, SHOCK COMPRESSION PROCESSING OF POWDERS, Advanced Materials and Manufacturing Processes, vol.49, issue.4, 1988.
DOI : 10.1007/BF01161192

K. Hokamoto, S. Tanaka, M. Fujita, S. Itoh, M. A. Meyers et al., High temperature shock consolidation of hard ceramic powders, Physica B: Condensed Matter, vol.239, issue.1-2, pp.1-5, 1997.
DOI : 10.1016/S0921-4526(97)00364-5

T. Kurita, H. Matsumoto, K. Sakamoto, T. Shimada, T. Osada et al., Effects of shock compression on powder mixtures of nickel and boron, Journal of Alloys and Compounds, vol.396, issue.1-2, pp.133-138, 2005.
DOI : 10.1016/j.jallcom.2004.12.014

T. J. Vogler, M. Y. Lee, and D. E. Grady, Static and dynamic compaction of ceramic powders, International Journal of Solids and Structures, vol.44, issue.2, pp.636-658, 2007.
DOI : 10.1016/j.ijsolstr.2006.05.001

I. Hauer, M. Larsson, U. Engström, P. , M. Kejzelman et al., Properties of high strength PM materials obtained by different compaction methods in combination with high temperature sintering High density PM components by high velocity compaction Effect of particle size distribution on green properties during high velocity compaction, PM2TEC 2002: ORLANDO. 71. Skoglund, pp.392-396, 2002.

J. Z. Wang, X. H. Qu, H. Q. Yin, M. J. Yi, and X. J. Yuan, High velocity compaction of ferrous powder, Powder Technology, vol.192, issue.1, pp.131-136, 2009.
DOI : 10.1016/j.powtec.2008.12.007

D. Souriou, P. Goeuriot, O. Bonnefoy, G. Thomas, and F. Doré, Influence of the formulation of an alumina powder on compaction, Powder Technology, vol.190, issue.1-2, pp.152-159, 2009.
DOI : 10.1016/j.powtec.2008.04.074

URL : https://hal.archives-ouvertes.fr/hal-00410221

C. Tang, Z. Xiao, J. Chen, C. Li, and T. L. Ngai, Compaction Experiment on the Newly Designed Warm High Velocity Compaction Equipment, Advanced Materials Research, vol.139, issue.141, pp.139-141, 2010.
DOI : 10.4028/www.scientific.net/AMR.139-141.485

J. Bayle and F. Jorion, High Velocity Compaction: Comparison with Conventional Compaction for New Press Development in Hot Cell Pellet Manufacturing, Procedia Chemistry, vol.7, issue.70, pp.431-443, 2012.
DOI : 10.1016/j.proche.2012.10.067

G. Sethi, E. Hauck, and R. M. German, High velocity compaction compared with conventional compaction, Materials Science and Technology, vol.95, issue.8, p.22, 2006.
DOI : 10.1007/BF00540451

F. Dore, L. Lazzarotto, and S. Bourdin, High velocity Compaction : Overview of materials, applications and potential, Materials Science Forum, pp.534-536, 2007.

Z. Zheng, Y. Zhu, Q. Xu, and X. Qu, Research of constitutive relation of metal powder in hign velocity compaction, Advanced Materials Research, pp.97-101, 2010.

M. Eriksson, M. Andersson, and E. Carlstrom, High Velocity Compaction of Titanium Powder, EURO PM 2003 -powder compaction, 2003.

P. Jonsén, H. Häggblad, L. Troive, J. Furuberg, S. Allroth et al., Green body behaviour of high velocity pressed metal powder, Materials Science Forum, pp.534-536, 2007.

H. Häggblad, M. Hockauf, M. Eriksson, and C. Berggren, Simulation of high velocity compaction of powder in a rubber mould with characterization of silicone rubber and titanium powder using a modified split Hopkinson set-up, Powder Technology, vol.154, issue.1, pp.33-42, 2005.
DOI : 10.1016/j.powtec.2005.01.026

M. Trecant, G. Daculsi, and M. Leroy, Dynamic compaction of calcium phosphate biomaterials, Journal of Materials Science: Materials in Medicine, vol.7, issue.9, pp.545-551, 1995.
DOI : 10.1007/BF00151037

M. Trécant, J. M. Guicheux, G. Grimandi, M. Leroy, and G. Daculsi, Dynamic compaction: a new process to compact therapeutic agent-loaded calcium phosphates, Biomaterials, vol.18, issue.2, pp.141-145, 1997.
DOI : 10.1016/S0142-9612(96)00108-1

H. Guan, M. Shao, and Z. Xiao, Design and Simulation Based on Virtual Prototype of New Apparatus for High Velocity Compaction, Key Engineering Materials, vol.443, issue.443, pp.177-182, 2010.
DOI : 10.4028/www.scientific.net/KEM.443.177

T. Sano, A. Obinata, H. Negishi, K. Suginami, and H. Takeishi, Effects of temperature rise on dynamic powder compaction, Journal of Materials Processing Technology, vol.67, issue.1-3, pp.1-3, 1997.
DOI : 10.1016/S0924-0136(96)02811-7

U. S. Lindholm, Some experiments with the split hopkinson pressure bar???, Journal of the Mechanics and Physics of Solids, vol.12, issue.5, pp.317-335, 1964.
DOI : 10.1016/0022-5096(64)90028-6

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

W. W. Chen and B. Song, Split Hopkinson (Kolsky) Bar: Design, Testing and Applications2010
DOI : 10.1007/978-1-4419-7982-7

J. L. Chiddister and L. E. Malvern, Compression-impact testing of aluminum at elevated temperatures, Experimental Mechanics, vol.188, issue.2, 1963.
DOI : 10.1088/0370-1301/62/11/302

Y. Li, Y. Guo, H. Hu, and Q. Wei, A critical assessment of high-temperature dynamic mechanical testing of metals, International Journal of Impact Engineering, vol.36, issue.2, pp.177-184, 2009.
DOI : 10.1016/j.ijimpeng.2008.05.004

M. Apostol, T. Vuoristo, and V. Kuokkala, High temperature high strain rate testing with a compressive SHPB, Journal de Physique IV (Proceedings), vol.110, pp.459-464, 2003.
DOI : 10.1051/jp4:20020736

W. Lee and C. Lin, High-temperature deformation behaviour of Ti6Al4V alloy evaluated by high strain-rate compression tests, Journal of Materials Processing Technology, vol.75, issue.1-3, pp.1-3, 1998.
DOI : 10.1016/S0924-0136(97)00302-6

A. M. Lennon and K. T. Ramesh, The influence of crystal structure on the dynamic behavior of materials at high temperatures, International Journal of Plasticity, vol.20, issue.2, pp.269-290, 2004.
DOI : 10.1016/S0749-6419(03)00037-8

S. Seo, O. Min, and H. Yang, Constitutive equation for Ti???6Al???4V at high temperatures measured using the SHPB technique, International Journal of Impact Engineering, vol.31, issue.6, pp.31-735, 2005.
DOI : 10.1016/j.ijimpeng.2004.04.010

S. P. Mates, R. Rhorer, E. Whitenton, T. Burns, and D. Basak, A Pulse-Heated Kolsky Bar Technique for Measuring the Flow Stress of Metals at High Loading and Heating Rates, Experimental Mechanics, vol.11, issue.6, pp.799-807, 2008.
DOI : 10.1002/9780470172575

S. P. Mates, S. Banovic, R. Rhorer, T. Burns, E. Whitenton et al., An electrical pulseheated Kolsky bar technique for high strain rate flow stress measurements of rapidly heated metals, in Dymat2009, pp.457-462

P. Acquier, S. Lemonnier, A. Allain-bonnasso, T. Rusinek, E. Grosdidier et al., Development of the Dynamic Compaction Resistance Sintering (DCRS): A new process for powder consolidation combining electric current and dynamic loading, Journal of Materials Processing Technology, vol.216, 2013.
DOI : 10.1016/j.jmatprotec.2014.10.006

URL : https://hal.archives-ouvertes.fr/hal-01514141

W. Oliferuk and M. Maj, Stress?strain curve and stored energy during uniaxial deformation of polycrystals. European Journal of Mechanics -A/Solids, pp.266-272, 2009.

D. Rittel, A. A. Kidane, M. Alkhader, A. Venkert, P. Landau et al., On the dynamically stored energy of cold work in pure single crystal and polycrystalline copper, Acta Materialia, vol.60, issue.9, pp.60-3719, 2012.
DOI : 10.1016/j.actamat.2012.03.029

F. J. Humphreys, Recrystallization and related annealing phenomena

P. Acquier, A. Rusinek, T. Grosdidier, E. Barraud, S. Lemonnier et al., Application of a corrective method for an elastic wave propagation study in a discontinuous media, Experimental Mechanics, 2013.

D. R. Kumar, R. K. Kumar, and P. K. Philip, Simulation of dynamic compaction of metal powders, Journal of Applied Physics, vol.85, issue.2, pp.767-775, 1999.
DOI : 10.1016/S0032-5910(05)80011-7

D. R. Kumar, R. K. Kumar, and P. K. Philip, Investigation on dynamic compaction of metal powders. Part I: Experimental. Powder metallurgy, p.45, 2002.

T. Jankowiak, A. Rusinek, and T. Lodygowski, Validation of the Klepaczko?Malinowski model for friction correction and recommendations on Split Hopkinson Pressure Bar. Finite Elements in Analysis and Design, pp.47-1191, 2011.

T. Børvik, A. H. Clausen, O. S. Hopperstad, and M. Langseth, Perforation of AA5083-H116 aluminium plates with conical-nose steel projectiles???experimental study, International Journal of Impact Engineering, vol.30, issue.4, pp.367-384, 2004.
DOI : 10.1016/S0734-743X(03)00072-1

E. Zhang and B. Wang, On the compressive behaviour of sintered porous coppers with low to medium porosities???Part I: Experimental study, International Journal of Mechanical Sciences, vol.47, issue.4-5, pp.4-5, 2005.
DOI : 10.1016/j.ijmecsci.2004.12.011

M. Hakamada, Y. Asao, T. Kuromura, Y. Chen, H. Kusuda et al., Density dependence of the compressive properties of porous copper over a wide density range, Acta Materialia, vol.55, issue.7, pp.55-2291, 2007.
DOI : 10.1016/j.actamat.2006.11.024

B. Wang and E. Zhang, On the compressive behavior of sintered porous coppers with low-to-medium porosities???Part II: Preparation and microstructure, International Journal of Mechanical Sciences, vol.50, issue.3, pp.550-558, 2008.
DOI : 10.1016/j.ijmecsci.2007.08.003

K. Safa and G. Gary, Displacement correction for punching at a dynamically loaded bar end, International Journal of Impact Engineering, vol.37, issue.4, pp.371-384, 2010.
DOI : 10.1016/j.ijimpeng.2009.09.006

URL : https://hal.archives-ouvertes.fr/hal-00425440

A. J. Ardell, Precipitation hardening, Metallurgical Transactions A, vol.67, issue.12, pp.2131-2165, 1985.
DOI : 10.1016/B978-1-4832-8412-5.50108-9

K. Anderson and J. Groza, Microstructural size effects in high-strength high-conductivity Cu-Cr-Nb alloys, Metallurgical and Materials Transactions A, vol.42, issue.236, pp.1211-1224, 2001.
DOI : 10.1007/BF02643766

T. Gladman, On the Theory of the Effect of Precipitate Particles on Grain Growth in Metals, Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences, vol.294, issue.1438, pp.294-298, 1438.
DOI : 10.1098/rspa.1966.0208

N. Hansen, Hall???Petch relation and boundary strengthening, Scripta Materialia, vol.51, issue.8, pp.51-801, 2004.
DOI : 10.1016/j.scriptamat.2004.06.002

J. Schiotz, F. D. Di-tolla, and K. W. Jacobsen, Softening of nanocrystalline metals at very small grain sizes, Nature, issue.6667, pp.391-561, 1998.

L. Hattali, J. P. Neumann, T. Zhong, and Y. A. Chang, Caractérisation et modélisation thermo-mécanique des assemblages métalcéramique élaborés par thermocompression Ecole centrale de Lyon The Cu?O (Copper-Oxygen) system. Bulletin of Alloy Phase Diagrams, pp.136-140, 1984.

B. G. Ravi, R. Chaim, and A. Gedanken, Sintering of bimodal alumina powder mixtures with a nanocrystalline component, Nanostructured Materials, vol.11, issue.7, pp.853-859, 1999.
DOI : 10.1016/S0965-9773(99)00380-3

A. Petersson and J. Ågren, Sintering shrinkage of WC???Co materials with bimodal grain size distributions, Acta Materialia, vol.53, issue.6, pp.1665-1671, 2005.
DOI : 10.1016/j.actamat.2004.12.016

K. R. Anderson, Effect of thermal and mechanical processing on microstructures and desired properties of particles-strengthened Cu-Cr-Nb alloys, 2000.

L. Minier, S. L. Gallet, Y. Grin, and F. Bernard, A comparative study of nickel and alumina sintering using spark plasma sintering (SPS), Materials Chemistry and Physics, vol.134, issue.1, pp.243-253, 2012.
DOI : 10.1016/j.matchemphys.2012.02.059

URL : https://hal.archives-ouvertes.fr/hal-00761278

B. Thierry, Analyse EBSD Principe et cartographies d'orientations. Techniques de l'ingénieur Essais métallographiques des métaux et alliages, base documentaire : TIB343DUO(ref. article : m4138), 2010.

R. A. Schwartzer, Review of texture and microstructure, p.7, 1993.

L. Germain, Contribution à l'étude des hétérogénéités de texture des billettes d'IMI 834, 2005.