Electron beam powder bed fusion of Y2O3/γ-TiAl nanocomposite with balanced strength and toughness

Additive Manufacturing - Tập 72 - Trang 103650 - 2023
B. Gao1, H. Peng2, H. Yue3, H. Guo1, C. Wang4, B. Chen5
1School of Materials Science and Engineering, Beihang University, Beijing 100191, China
2Research Institute for Frontier Science, Beihang University, Beijing, 100191, China
3School of Materials Science and Engineering, Jiangsu University of Science and Technology, Zhenjiang 212003, China
4GE Additive Technology (China) Co., LTD, Beijing 100040, China
5School of Engineering, University of Leicester, Leicester, LE1 7RH, UK

Tài liệu tham khảo

Shahedi Asl, 2021, Formation of Al–Al2O3 core–shell nanosphere chains during electron beam melting of γ-TiAl, Intermetallics, 136, 10.1016/j.intermet.2021.107261 Gao, 2021, An innovative way to fabricate γ-TiAl blades and their failure mechanisms under thermal shock, Scr. Mater., 203, 10.1016/j.scriptamat.2021.114092 Stegman, 2022, Reactive introduction of oxide nanoparticles in additively manufactured 718 Ni alloys with improved high temperature performance, J. Alloy. Compd., 920, 10.1016/j.jallcom.2022.165846 Guo, 2022, Y2O3 nanoparticles decorated IN738LC superalloy manufactured by laser powder bed fusion: cracking inhibition, microstructures and mechanical properties, Compos, Part B Eng., 230, 10.1016/j.compositesb.2021.109555 Ghayoor, 2020, Selective laser melting of austenitic oxide dispersion strengthened steel: processing, microstructural evolution and strengthening mechanisms, Mater. Sci. Eng. A, 788, 10.1016/j.msea.2020.139532 Wang, 2021, Hierarchical grain refinement during the laser additive manufacturing of Ti-6Al-4V alloys by the addition of micron-sized refractory particles, Addit. Manuf., 45 Glerum, 2022, Effect of oxide dispersoids on precipitation-strengthened Al-1.7Zr (wt%) alloys produced by laser powder-bed fusion, Addit. Manuf., 56 Shokouhimehr, 2023, Nanostructure and nanoindentation study of pulse electric-current sintered TiB2–SiC–Cf composite, Sci. Rep., 13, 1, 10.1038/s41598-022-27186-8 Nguyen, 2020, Densification behavior and microstructure development in TiB2 ceramics doped with h-BN, Ceram. Int., 46, 18970, 10.1016/j.ceramint.2020.04.223 Xiao, 2020, The effect of nano-Y2O3 addition on tensile properties and creep behavior of as-cast TiAl alloy, J. Alloy. Compd., 825, 10.1016/j.jallcom.2020.153852 Wu, 2002, Microstructural refinement and improvement of mechanical properties and oxidation resistance in EPM TiAl-based intermetallics with yttrium addition, Acta Mater., 50, 1479, 10.1016/S1359-6454(02)00006-X Kostov, 2006, Predicting thermodynamic stability of crucible oxides in molten titanium and titanium alloys, Comput. Mater. Sci., 38, 374, 10.1016/j.commatsci.2006.03.006 Kenel, 2021, Evolution of Y2O3 dispersoids during laser powder bed fusion of oxide dispersion strengthened Ni-Cr-Al-Ti γ/γ’ superalloy, Addit. Manuf., 47 Gao, 2021, Electron beam melted TiC/high Nb-TiAl nanocomposite: microstructure and mechanical property, Mater. Sci. Eng. A., 811, 10.1016/j.msea.2021.141059 Yue, 2022, Microstructure and mechanical properties of Y2O3-bearing Ti–48Al–2Cr–2Nb alloy prepared by selective electron beam melting, Mater. Sci. Eng. A., 840, 10.1016/j.msea.2022.142960 Kim, 2017, Gammalloy materials–processes–application technology, Jom, 69, 2563, 10.1007/s11837-017-2627-9 Kim, 2020, Enhancing the creep resistance of electron beam melted gamma Ti–48Al–2Cr–2Nb alloy by using two-step heat treatment, Intermetallics, 121, 10.1016/j.intermet.2020.106771 Kan, 2018, Microstructure and mechanical properties of a high Nb-TiAl alloy fabricated by electron beam melting, Mater. Des., 160, 611, 10.1016/j.matdes.2018.09.044 Balachandramurthi, 2019, Microstructure tailoring in electron beam powder bed fusion additive manufacturing and its potential consequences, Results Mater, 1 Galati, 2022, An investigation on the processing conditions of Ti-6Al-2Sn-4Zr-2Mo by electron beam powder bed fusion: Microstructure, defect distribution, mechanical properties and dimensional accuracy, Addit. Manuf., 50 Zhao, 2021, Role of superficial defects and machining depth in tensile properties of electron beam melting (EBM) made inconel, 718, J. Mater. Eng. Perform., 30, 2091, 10.1007/s11665-021-05487-9 Raghavan, 2016, Numerical modeling of heat-transfer and the influence of process parameters on tailoring the grain morphology of IN718 in electron beam additive manufacturing, Acta Mater., 112, 303, 10.1016/j.actamat.2016.03.063 Kirka, 2017, Strategy for texture management in metals additive manufacturing, Jom, 69, 523, 10.1007/s11837-017-2264-3 Balachandramurthi, 2019, Microstructural influence on fatigue crack propagation during high cycle fatigue testing of additively manufactured Alloy 718, Mater. Charact., 149, 82, 10.1016/j.matchar.2019.01.018 Zhao, 2021, Contouring strategies to improve the tensile properties and quality of EBM printed Inconel 625 parts, J. Manuf. Process., 62, 418, 10.1016/j.jmapro.2020.12.007 Goel, 2020, As-built and post-treated microstructures of an electron beam melting (EBM) produced nickel-based superalloy, Metall. Mater. Trans. A Phys. Metall. Mater. Sci., 51, 6546, 10.1007/s11661-020-06037-z Simchi, 2006, Direct laser sintering of metal powders: mechanism, kinetics and microstructural features, Mater. Sci. Eng. A, 428, 148, 10.1016/j.msea.2006.04.117 Bikas, 2019, A design framework for additive manufacturing, Int. J. Adv. Manuf. Technol., 103, 3769, 10.1007/s00170-019-03627-z Karlsson, 2013, Characterization and comparison of materials produced by Electron Beam Melting (EBM) of two different Ti-6Al-4V powder fractions, J. Mater. Process. Technol., 213, 2109, 10.1016/j.jmatprotec.2013.06.010 Li, 2019, Microstructures and mechanical properties of laser additive manufactured Al-5Si-1Cu-Mg alloy with different layer thicknesses, J. Alloy. Compd., 789, 15, 10.1016/j.jallcom.2019.03.101 Dadbakhsh, 2014, Effect of layer thickness in selective laser melting on microstructure of Al/5 wt% Fe2O3 powder consolidated parts, Sci. World J., 2014, 10.1155/2014/106129 Vajpai, 2013, A novel powder metallurgy processing approach to prepare fine-grained Ti-rich TiAl-based alloys from pre-alloyed powders, Intermetallics, 42, 146, 10.1016/j.intermet.2013.06.006 Yao, 2021, Solidification microstructure and tensile deformation mechanisms of selective electron beam melted Ni3Al-based alloy at room and elevated temperatures, Mater. Sci. Eng. A., 802, 10.1016/j.msea.2020.140629 Karagöz, 1989, Determination of carbide and matrix compositions in high-speed steels by analytical electron microscopy, Metall. Trans. A, 20, 2695, 10.1007/BF02670163 Sames, 2016, The metallurgy and processing science of metal additive manufacturing, Int. Mater. Rev., 61, 315, 10.1080/09506608.2015.1116649 Gu, 2015, Rapid fabrication of Al-based bulk-form nanocomposites with novel reinforcement and enhanced performance by selective laser melting, Scr. Mater., 96, 25, 10.1016/j.scriptamat.2014.10.011 Plotkowski, 2017, Verification and validation of a rapid heat transfer calculation methodology for transient melt pool solidification conditions in powder bed metal additive manufacturing, Addit. Manuf., 18, 256 Kenel, 2017, Selective laser melting of an oxide dispersion strengthened (ODS) γ-TiAl alloy towards production of complex structures, Mater. Des., 134, 81, 10.1016/j.matdes.2017.08.034 Monchoux, 2017, Deformation modes and size effect in near-γ TiAl alloys, Mater. Sci. Eng. A., 679, 123, 10.1016/j.msea.2016.09.092 Denquin, 1996, Phase transformation mechanisms involved in two-phase TiAl-based alloys - I. Lamellar structure formation, Acta Mater., 44, 343, 10.1016/1359-6454(95)00167-4 Wagner, 2002, Evolution of recrystallisation texture and microstructure in low alloyed titanium sheets, Acta Mater., 50, 1245, 10.1016/S1359-6454(01)00427-X Kawabata, 1988, Bend tests and fracture mechanism of TiAl single crystals at 293–1073 K, Acta Met., 36, 963, 10.1016/0001-6160(88)90151-4 Chan, 1995, Effects of lamellae spacing and colony size on the fracture resistance of a fully-lamellar TiAl alloy, Acta Metall. Mater., 43, 439, 10.1016/0956-7151(94)00278-P Chen, 2016, Polysynthetic twinned TiAl single crystals for higherature applications, Nat. Mater., 15, 876, 10.1038/nmat4677 Zhu, 2005, Microstructural stability of fine-grained fully lamellar XD TiAl alloys by step aging, Metall. Mater. Trans. A, 36A, 1339, 10.1007/s11661-005-0225-x Venkateswara Rao, 1995, Fatigue-crack growth and fracture resistance of a two-phase (γ + α2) TiAl alloy in duplex and lamellar microstructures, Mater. Sci. Eng. A., 192–193, 474, 10.1016/0921-5093(94)03264-5 Zhu, 2006, Effect of Initial microstructure on microstructural instability and creep resistance of XD TiAl alloys, Metall. Mater. Trans. A, 37A, 3149, 10.1007/s11661-006-0195-7 Cheng, 1998, The decomposition of the beta phase in Ti-44Al-8Nb and Ti-44Al-4Nb-4Zr-0.2Si alloys, Acta Mater., 46, 4801, 10.1016/S1359-6454(98)00113-X Sharma, 2000, Instability mechanisms in lamellar microstructures, Acta Mater., 48, 875, 10.1016/S1359-6454(99)00378-X Cao, 2015, Microstructural evolution of TiAl-based alloys deformed by high-pressure torsion, Acta Mater., 98, 103, 10.1016/j.actamat.2015.07.012 GLEITERT, 1969, The formation of annealing twins, Acta Met., 1421, 10.1016/0001-6160(69)90004-2 Wen, 2013, Generalized planar fault energies and mechanical twinning in gamma TiAl alloys, Scr. Mater., 68, 759, 10.1016/j.scriptamat.2012.12.032 Kim, 2001, Parallel twinning during creep deformation in soft orientation PST crystal of TiAl alloy, Acta Mater., 49, 2635, 10.1016/S1359-6454(01)00180-X Goel, 2020, Residual stress determination by neutron diffraction in powder bed fusion-built Alloy 718: Influence of process parameters and post-treatment, Mater. Des., 195, 10.1016/j.matdes.2020.109045 Zhang, 2001, Physical properties of TiAl-base alloys, Scr. Mater., 45, 645, 10.1016/S1359-6462(01)01075-2 Settineri, 2014, An evaluative approach to correlate machinability, microstructures, and material properties of gamma titanium aluminides, CIRP Ann. - Manuf. Technol., 63, 57, 10.1016/j.cirp.2014.03.068 Lapin, 2019, High temperature deformation behaviour and microstructure of cast in-situ TiAl matrix composite reinforced with carbide particles, J. Alloy. Compd., 797, 754, 10.1016/j.jallcom.2019.05.136 Chauniyal, 2020, Influence of lattice misfit on the deformation behaviour of α2/γ lamellae in TiAl alloys, Mater. Sci. Eng. A, 796, 10.1016/j.msea.2020.140053 Gao, 2019, Generated nearly lamellar microstructure in cast Ti-48Al-2Nb-2Cr alloy for high-temperature strengthening, Metall. Mater. Trans. A Phys. Metall. Mater. Sci., 50, 5839, 10.1007/s11661-019-05491-8 Sanaty-Zadeh, 2012, Comparison between current models for the strength of particulate-reinforced metal matrix nanocomposites with emphasis on consideration of Hall-Petch effect, Mater. Sci. Eng. A., 531, 112, 10.1016/j.msea.2011.10.043 Goh, 2007, Properties and deformation behaviour of Mg-Y2O3 nanocomposites, Acta Mater., 55, 5115, 10.1016/j.actamat.2007.05.032 Hofmeister, 2015, Quantification of nitrogen impurity and estimated Orowan strengthening through secondary ion mass spectroscopy in aluminum cryomilled for extended durations, Mater. Sci. Eng. A, 648, 412, 10.1016/j.msea.2015.09.007 Zheng, 2022, Evading the strength-ductility trade-off at room temperature and achieving ultrahigh plasticity at 800℃ in a TiAl alloy, Acta Mater., 225, 10.1016/j.actamat.2021.117585 Appel, 2016, Modeling concepts for intermetallic titanium aluminides, Prog. Mater. Sci., 81, 55, 10.1016/j.pmatsci.2016.01.001 Ma, 2017, Nanoparticle-induced unusual melting and solidification behaviours of metals, Nat. Commun., 8, 1 Körner, 2016, Additive manufacturing of metallic components by selective electron beam melting - a review, Int. Mater. Rev., 61, 361, 10.1080/09506608.2016.1176289 Khairallah, 2016, Laser powder-bed fusion additive manufacturing: physics of complex melt flow and formation mechanisms of pores, spatter, and denudation zones, Acta Mater., 108, 36, 10.1016/j.actamat.2016.02.014 Lee, 2016, Modeling of heat transfer, fluid flow and solidification microstructure of nickel-base superalloy fabricated by laser powder bed fusion, Addit. Manuf., 12, 178 Romano, 2015, Temperature distribution and melt geometry in laser and electron-beam melting processes - a comparison among common materials, Addit. Manuf., 8, 1 Appel, 2003, Creep behavior of TiAl alloys with enhanced high-temperature capability, Metall. Mater. Trans. A Phys. Metall. Mater. Sci. 34 A, 2149, 10.1007/s11661-003-0279-6 Klein, 2017, Mechanical behavior and related microstructural aspects of a nano-lamellar TiAl alloy at elevated temperatures, Acta Mater., 128, 440, 10.1016/j.actamat.2017.02.050 Wei, 2011, Residual plastic strain recovery driven by grain boundary diffusion in nanocrystalline thin films, Acta Mater., 59, 3937, 10.1016/j.actamat.2011.03.019 Cakmak, 2019, A comprehensive study on the fabrication and characterization of Ti–48Al–2Cr–2Nb preforms manufactured using electron beam melting, Materialia, 6, 10.1016/j.mtla.2019.100284