Laser powder bed fusion of a novel high strength quasicrystalline Al–Fe–Cr reinforced Al matrix composite
Tài liệu tham khảo
Qi, 2020, Laser powder bed fusion of a near-eutectic Al–Fe binary alloy: Processing and microstructure, Addit. Manuf., 35
Zhang, 2016, Selective laser melting of high strength Al–Cu–Mg alloys: Processing, microstructure and mechanical properties, Mat. Sci. Eng. A-Struct., 656, 47, 10.1016/j.msea.2015.12.101
Zhang, 2022, Towards understanding metallurgical defect formation of selective laser melted wrought aluminum alloys, Adv. Powder Mater., 1
Bahl, 2021, Elevated temperature ductility dip in an additively manufactured Al–Cu–Ce alloy, Acta Mater., 220, 10.1016/j.actamat.2021.117285
Wang, 2021, Wear performance and corrosion behavior of nano-SiCp-reinforced AlSi7Mg composite prepared by selective laser melting, Acta Metall. Sin.-Engl., 34, 1213, 10.1007/s40195-021-01220-6
Kang, 2017, Characterization of the microstructure of a selective laser melting processed Al–50Si alloy: Effect of heat treatments, Mater. Char., 130, 243, 10.1016/j.matchar.2017.06.026
Aversa, 2019, New aluminum alloys specifically designed for laser powder bed fusion: A review, Materials, 12, 1007, 10.3390/ma12071007
Wang, 2021, Microstructure and wear behavior of nano-TiB2p/2024Al matrix composites fabricated by laser direct energy deposition with powder feeding, J. Tribol. Trans. ASME, 143
Kang, 2017, A novel approach to in-situ produce functionally graded silicon matrix composite materials by selective laser melting, Compos. Struct., 172, 251, 10.1016/j.compstruct.2017.03.096
Li, 2020, Microstructures and tensile properties of a selective laser melted Al–Zn–Mg–Cu (Al7075) alloy by Si and Zr microalloying, Mat. Sci. Eng. A-Struct., 787, 10.1016/j.msea.2020.139492
Spierings, 2017, Microstructural features of Sc- and Zr-modified Al–Mg alloys processed by selective laser melting, Mater. Des., 115, 52, 10.1016/j.matdes.2016.11.040
Kotadia, 2021, A review of laser powder bed fusion additive manufacturing of aluminium alloys: Microstructure and properties, Addit. Manuf., 46
Blakey-Milner, 2021, Metal additive manufacturing in aerospace: a review, Mater. Des., 209, 10.1016/j.matdes.2021.110008
Wang, 2018, Microstructure and mechanical properties of a heat-treatable Al–3.5Cu–1.5Mg–1Si alloy produced by selective laser melting, Mat. Sci. Eng. A-Struct., 711, 562, 10.1016/j.msea.2017.11.063
Spierings, 2018, Influence of SLM scan-speed on microstructure, precipitation of Al3Sc particles and mechanical properties in Sc- and Zr-modified Al–Mg alloys, Mater. Des., 140, 134, 10.1016/j.matdes.2017.11.053
Xi, 2018, Comparative investigation of microstructure, mechanical properties and strengthening mechanisms of Al–12Si/TiB2 fabricated by selective laser melting and hot pressing, Ceram. Int., 44, 17635, 10.1016/j.ceramint.2018.06.225
Tan, 2023, Additive manufacturing sic-reinforced maraging steel: Parameter optimisation, microstructure and properties, Adv. Powder Mater., 2
Penchal Reddy, 2018, Enhancing compressive, tensile, thermal and damping response of pure Al using BN nanoparticles, J. Alloys Compd., 762, 398, 10.1016/j.jallcom.2018.05.205
Spierings, 2017, SLM-processed Sc- and Zr- modified Al–Mg alloy: Mechanical properties and microstructural effects of heat treatment, Mat. Sci. Eng. A-Struct., 701, 264, 10.1016/j.msea.2017.06.089
Zhang, 2020, Additive manufacturing of three-dimensional metal-glass functionally gradient material components by laser powder bed fusion with in situ powder mixing, Addit. Manuf., 33
Kang, 2017, On the microstructure, hardness and wear behavior of Al–Fe–Cr quasicrystal reinforced Al matrix composite prepared by selective laser melting, Mater. Des., 132, 105, 10.1016/j.matdes.2017.06.060
Kang, 2018, In-situ synthesis of aluminum/nano-quasicrystalline Al–Fe–Cr composite by using selective laser melting, Compos. B Eng., 155, 382, 10.1016/j.compositesb.2018.08.108
Lu, 2020, Compression behaviour of quasicrystal/Al composite with powder mixture driven layered microstructure prepared by selective laser melting, Opt Laser. Technol., 129, 10.1016/j.optlastec.2020.106277
de Araujo, 2021, Additive manufacturing of a quasicrystal-forming Al95Fe2Cr2Ti1 alloy with remarkable high-temperature strength and ductility, Addit. Manuf., 41
de Araujo, 2022, Processability of recycled quasicrystalline Al–Fe–Cr–Ti composites by selective laser melting - a statistical approach, Mater, 22
Huttunen-Saarivirta, 2004, Microstructure, fabrication and properties of quasicrystalline Al–Cu–Fe alloys: A review, J. Alloys Compd., 363, 154, 10.1016/S0925-8388(03)00445-6
Köster, 1993, Mechanical properties of quasicrystalline and crystalline phases in Al–Cu–Fe alloys, J. Non-Cryst. Solids, 153, 446, 10.1016/0022-3093(93)90393-C
Qin, 2021, Corrosion behavior and mechanism of selective laser melted Ti35Nb alloy produced using pre-alloyed and mixed powder in Hank's solution, Corrosion Sci., 189, 10.1016/j.corsci.2021.109609
Kang, 2015, 3d morphology and formation process of the icosahedral quasicrystalline phase in rapidly solidified Al–Mn alloy, Acta Metall. Sin.Engl., 29, 28, 10.1007/s40195-015-0357-y
Yap, 2015, Review of selective laser melting: Materials and applications, Appl. Phys. Rev., 2, 10.1063/1.4935926
Kurz, 1981, Dendrite growth at the limit of stability: Tip radius and spacing, Acta Metall., 29, 11, 10.1016/0001-6160(81)90082-1
Wang, 2019, Mechanistic understanding on the evolution of nanosized Al3Fe phase in Al–Fe alloy during heat treatment and its effect on mechanical properties, Mat. Sci. Eng. A-Struct., 751, 23, 10.1016/j.msea.2019.02.066
Bian, 2019, Thermal stability of Al–Fe–Ni alloy at high temperatures, J. Mater. Res. Technol., 8, 2538, 10.1016/j.jmrt.2019.01.028
Kim, 2007, Formation of icosahedral phase in an Al93Fe3Cr2Ti2 bulk alloy, J. Alloys Compd., 436, L1, 10.1016/j.jallcom.2006.06.106
Gu, 2017, A multiscale understanding of the thermodynamic and kinetic mechanisms of laser additive manufacturing, Eng. Plast., 3, 675
2010, 72
Patakham, 2021, MPB characteristics and Si morphologies on mechanical properties and fracture behavior of SLM AlSi10Mg, Mat. Sci. Eng. A-Struct., 821, 10.1016/j.msea.2021.141602
Maamoun, 2018, The effect of selective laser melting process parameters on the microstructure and mechanical properties of Al6061 and alsi10mg alloys, Materials, 12, 12, 10.3390/ma12010012
Ma, 2020, Effect of bimodal microstructure on the tensile properties of selective laser melt Al–Mg–Sc–Zr alloy, J. Alloys Compd., 815, 10.1016/j.jallcom.2019.152422
Galano, 2021, Novel Al based nanoquasicrystalline alloys, Prog. Mater. Sci., 123
Leonard, 2020, Microstructure/mechanical behavior relationships in upset-forged powder-processed Al alloys containing icosahedral quasicrystalline dispersoids, Mat. Sci. Eng. A-Struct., 788, 10.1016/j.msea.2020.139487
Thangaraju, 2012, On the estimation of true hall-petch constants and their role on the superposition law exponent in al alloys, Adv. Eng. Mater., 14, 892, 10.1002/adem.201200114
Leyson, 2012, Solute strengthening from first principles and application to aluminum alloys, Acta Mater., 60, 3873, 10.1016/j.actamat.2012.03.037
Suryawanshi, 2016, Simultaneous enhancements of strength and toughness in an Al–12Si alloy synthesized using selective laser melting, Acta Mater., 115, 285, 10.1016/j.actamat.2016.06.009
Lu, 2021, Keyhole mode induced simultaneous improvement in strength and ductility of Sc modified Al–Mn alloy manufactured by selective laser melting, Mat. Sci. Eng. A-Struct., 811, 10.1016/j.msea.2021.141089