V. Badjeck, M. G. Walls, L. Chaffron, J. Malaplate, and K. March, New insights into the chemical structure of Y2Ti2O7?? nanoparticles in oxide dispersion-strengthened steels designed for sodium fast reactors by electron energy-loss spectroscopy, Journal of Nuclear Materials, vol.456, pp.292-301, 2015.

Y. Bai, Y. Yang, D. Wang, and M. Zhang, Influence mechanism of parameters process and mechanical properties evolution mechanism of maraging steel 300 by selective laser melting, Materials Science and Engineering: A, vol.703, pp.116-123, 2017.

T. Boegelein, S. N. Dryepondt, A. Pandey, K. Dawson, and G. J. Tatlock, Mechanical response and deformation mechanisms of ferritic oxide dispersion strengthened steel structures produced by selective laser melting, Acta Materialia, vol.87, pp.201-215, 2015.

T. Boegelein, E. Louvis, K. Dawson, G. J. Tatlock, and A. R. Jones, Characterisation of a complex thin walled structure fabricated by selective laser melting using a ferritic oxide dispersion strengthened steel, Materials Characterization, vol.112, pp.30-40, 2016.

D. Boisselier and S. Sankaré, Influence of Powder Characteristics in Laser Direct Metal Deposition of SS316L for Metallic Parts Manufacturing, Physics Procedia, Laser Assisted Net shape Engineering, vol.39, pp.455-463, 2012.

T. Debroy, H. L. Wei, J. S. Zuback, T. Mukherjee, J. W. Elmer et al., Additive manufacturing of metallic components -Process, structure and properties, Progress in Materials Science, vol.92, pp.112-224, 2018.

T. Debroy and J. Zuback, The Hardness of Additively Manufactured Alloys, 2018.

C. Dongsheng, A. Kimura, Z. Chonghong, and H. Wentuo, Effects of Alloying Elements on Thermal Aging Embrittlement of 15Cr Ferritic Alloys, Proceedings of the 8th Pacific Rim International Congress on Advanced Materials and Processing, pp.529-535, 2016.

M. Dumont, L. Commin, I. Morfin, F. Degeuser, F. Legendre et al., Chemical composition of nano-phases studied by anomalous small-angle X-ray scattering: Application to oxide nano-particles in ODS steels, Materials Characterization, vol.87, pp.138-142, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01138226

H. Fayazfar, M. Salarian, A. Rogalsky, D. Sarker, P. Russo et al., A critical review of powder-based additive manufacturing of ferrous alloys: Process parameters, microstructure and mechanical properties, Materials & Design, vol.144, pp.98-128, 2018.

A. García-junceda, M. Hernández-mayoral, and M. Serrano, Influence of the microstructure on the tensile and impact properties of a 14Cr ODS steel bar, Materials Science and Engineering: A, vol.556, pp.696-703, 2012.

I. Gibson, D. Rosen, and B. Stucker, Additive Manufacturing Technologies: 3D Printing, Rapid Prototyping, and Direct Digital Manufacturing, 2015.

F. Hengsbach, P. Koppa, K. Duschik, M. J. Holzweissig, M. Burns et al., Duplex stainless steel fabricated by selective laser melting -Microstructural and mechanical properties, Materials & Design, vol.133, pp.136-142, 2017.

D. Herzog, V. Seyda, E. Wycisk, and C. Emmelmann, Additive manufacturing of metals, Acta Materialia, vol.117, pp.371-392, 2016.

R. M. Hunt, K. J. Kramer, and B. El-dasher, Selective laser sintering of MA956 oxide dispersion strengthened steel, Journal of Nuclear Materials, vol.464, pp.80-85, 2015.

W. E. King, H. D. Barth, V. M. Castillo, G. F. Gallegos, J. W. Gibbs et al., Observation of keyhole-mode laser melting in laser powder-bed fusion additive manufacturing, Journal of Materials Processing Technology, vol.214, pp.2915-2925, 2014.

S. Kou, , 2002.

B. Liu, R. Wildman, C. Tuck, I. Ashcroft, and R. Hague, Investigation the effect of particle size distribution on processing parameters optimization in selective laser melting process. Presented at the In proc of the Annual Int Solid Freeform Fabrication Symp, pp.227-238, 2011.

M. K. Miller, E. A. Kenik, K. F. Russell, L. Heatherly, D. T. Hoelzer et al., Atom probe tomography of nanoscale particles in ODS ferritic alloys. Materials Science and Engineering: A, 47 th International Field Emission Symposium, vol.353, pp.680-689, 2003.

N. J. Petch, The Cleavage Strength of Polycrystals, vol.174, pp.25-28, 1953.

K. G. Prashanth, S. Scudino, A. K. Chaubey, L. Löber, P. Wang et al., Processing of Al-12Si-TNM composites by selective laser melting and evaluation of compressive and wear properties, Journal of Materials Research, vol.31, pp.55-65, 2016.

M. Praud, F. Mompiou, J. Malaplate, D. Caillard, J. Garnier et al., Study of the deformation mechanisms in a Fe-14% Cr ODS alloy, Journal of Nuclear Materials, Special Issue of the International Workshop on Dispersion Strengthened Steels for Advanced Nuclear Applications -DIANA, vol.428, pp.90-97, 2012.

H. Sakasegawa, L. Chaffron, F. Legendre, L. Boulanger, T. Cozzika et al., Correlation between chemical composition and size of very small oxide particles in the MA957 ODS ferritic alloy, Journal of Nuclear Materials, vol.384, pp.115-118, 2009.

M. ??epanovi?, V. Castro, . De, T. Leguey, M. A. Auger et al., Microstructural stability of ODS Fe-14Cr (-2W-0.3Ti) steels after simultaneous triple irradiation, Nuclear Materials and Energy, vol.9, pp.490-495, 2016.

B. Song, S. Dong, S. Deng, H. Liao, and C. Coddet, Microstructure and tensile properties of iron parts fabricated by selective laser melting, Optics & Laser Technology, vol.56, pp.451-460, 2014.

A. Steckmeyer, Experimental study and modelling of the high temperature mechanical behaviour of oxide dispersion strengthened ferritic steels (Theses), 2012.

M. Tang, P. C. Pistorius, and J. L. Beuth, Prediction of lack-of-fusion porosity for powder bed fusion, Additive Manufacturing, vol.14, pp.39-48, 2017.

L. Thijs, F. Verhaeghe, T. Craeghs, J. V. Humbeeck, and J. Kruth, A study of the microstructural evolution during selective laser melting of Ti-6Al-4V, Acta Materialia, vol.58, pp.3303-3312, 2010.

J. C. Walker, K. M. Berggreen, A. R. Jones, and C. J. Sutcliffe, Fabrication of Fe-Cr-Al Oxide Dispersion Strengthened PM2000 Alloy Using Selective Laser Melting, Adv. Eng. Mater, vol.11, pp.541-546, 2009.

A. Wasilkowska, M. Bartsch, U. Messerschmidt, R. Herzog, and A. Czyrska-filemonowicz, Creep mechanisms of ferritic oxide dispersion strengthened alloys, Journal of Materials Processing Technology, vol.133, pp.237-243, 2003.

Y. Yang, . Wen, . Shifeng, . Wei, . Quisong et al., Effect of scan line spacing on texture, phase and nanohardness of TiAl/TiB 2 metal matrix composites fabricated by selective laser melting, Journal of Alloys and Compounds, vol.728, pp.803-814, 2017.

E. Yasa and J. Kruth, Microstructural investigation of Selective Laser Melting 316L stainless steel parts exposed to laser re-melting, Procedia Engineering, 1st CIRP Conference on Surface Integrity (CSI), vol.19, pp.389-395, 2011.

G. Zhang, Z. Zhou, K. Mo, Y. Miao, S. Li et al., The comparison of microstructures and mechanical properties between 14Cr-Al and 14Cr-Ti ferritic ODS alloys, Materials & Design, vol.98, pp.61-67, 2016.

Q. Zhao, L. Yu, Y. Liu, Y. Huang, Z. Ma et al., Microstructure and tensile properties of a 14Cr ODS ferritic steel, Materials Science and Engineering: A, vol.680, pp.347-350, 2017.