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Materials Science in Additive Manufacturing                              In-situ alloying of Ti41Nb by LPBF



               process-microstructure-property correlations in powder-  19.  Dong Z, Han C, Zhao Y,  et al. Role of heterogenous
               bed fusion additive manufacturing through information-  microstructure and deformation behavior in achieving
               rich  surface  features  with deep  learning.  J  Mater Process   superior strength-ductility synergy in zinc fabricated via laser
               Technol. 2023;311:117804.                          powder bed fusion. Int J Extrem Manuf. 2024;6(4):045003.
               doi: 10.1016/j.jmatprotec.2022.117804              doi: 10.1088/2631-7990/ad3929
            10.  Chandra S, Tan X, Narayan RL, Wang C, Tor SB, Seet  G.   20.  Kumar P, Ramamurty U. High cycle fatigue in selective laser
               A  generalised hot cracking criterion for nickel-based   melted Ti-6Al-4V. Acta Mater. 2020;194:305-320.
               superalloys additively manufactured by electron beam      doi: 10.1016/j.actamat.2020.05.041
               melting. Addit Manuf. 2021;37:101633.
                                                               21.  Li Y, Yang C, Zhao H, Qu S, Li X, Li Y. New developments
               doi: 10.1016/j.addma.2020.101633                   of Ti-based alloys for biomedical applications.  Materials
            11.  Xiang DD, Wang P, Tan XP, et al. Anisotropic microstructure   (Basel). 2014;7(3):1709-1800.
               and mechanical properties of additively manufactured      doi: 10.3390/ma7031709
               Co-Cr-Mo alloy using selective electron beam melting for
               orthopedic implants. Mater Sci Eng A. 2019;765:138270.  22.  Wolff J. Das Gesetz der Transformation der Knochen. Vol. 1.
                                                                  Berlin: Verlag von August Hirschwald; 1892. p. 1-152.
               doi: 10.1016/j.msea.2019.138270
                                                               23.  Niinomi M, Liu Y, Nakai M, Liu H, Li H. Biomedical
            12.  Tan XP, Chandra S, Kok Y,  et al. Revealing competitive   titanium alloys with young’s moduli close to that of cortical
               columnar  grain  growth  behavior  and  periodic   bone. Regen Biomater. 2016;3(3):173-185.
               microstructural banding in additively manufactured
               Ti-6Al-4 V parts by selective electron beam melting.      doi: 10.1093/rb/rbw016
               Materialia. 2019;7:100365.                      24.  Niinomi M. Recent metallic materials for biomedical
                                                                  applications. Metall Mater Trans A. 2002;33(3):477-486.
               doi: 10.1016/j.mtla.2019.100365
                                                                  doi: 10.1007/s11661-002-0109-2
            13.  Kumar P, Huang S, Cook DH,  et al. A  strong fracture-
               resistant high-entropy alloy with nano-bridged honeycomb   25.  Kuroda D, Niinomi M, Morinaga M, Kato Y, Yashiro T. Design
               microstructure intrinsically toughened by 3D-printing. Nat   and mechanical properties of new β type titanium alloys for
               Commun. 2024;15(1):841.                            implant materials. Mater Sci Eng A. 1998;243(1):244-249.
               doi: 10.1038/s41467-024-45178-2                    doi: 10.1016/S0921-5093(97)00808-3
            14.  Loh LE, Chua CK, Zhang WY, et al. Numerical investigation   26.  Wang Q, Han C, Choma T, et al. Effect of Nb content on
               and an effective modelling on the Selective Laser Melting   microstructure,  property  and  in vitro apatite-forming
               (SLM) process with aluminium alloy 6061. Int J Heat Mass   capability of Ti-Nb alloys fabricated via selective laser
               Transf. 2015;80:288-300.                           melting. Mater Des. 2017;126:268-277.
               doi: 10.1016/j.ijheatmasstransfer.2014.09.014      doi: 10.1016/j.matdes.2017.04.026
            15.  Wang D, Liu L, Deng G, et al. Recent progress on additive   27.  Huang S, Narayan RL, Tan JHK, Sing SL, Yeong WY.
               manufacturing of multi-material structures with laser   Resolving the porosity-unmelted inclusion dilemma during
               powder bed fusion. Virtual Phys Prototyp. 2022;17:329-365.  In-situ alloying of Ti34Nb via laser powder bed fusion. Acta
                                                                  Mater. 2021;204:116522.
               doi: 10.1080/17452759.2022.2028343
                                                                  doi: 10.1016/j.actamat.2020.116522
            16.  Yao L, Huang S, Ramamurty U, Xiao Z. On the formation
               of “Fish-scale” morphology with curved grain interfacial   28.  Huang S, Sing SL, Delooze G, Wilson R, Yeong WY.
               microstructures during selective laser melting of dissimilar   Laser powder bed fusion of titanium-tantalum alloys:
               alloys. Acta Mater. 2021;220:117331.               Compositions  and  designs  for  biomedical  applications.
                                                                  J Mech Behav Biomed Mater. 2020;108:103775.
               doi: 10.1016/j.actamat.2021.117331
                                                                  doi: 10.1016/j.jmbbm.2020.103775
            17.  Yao L, Xiao Z, Huang S, Ramamurty U. The formation
               mechanism of metal-ceramic interlayer interface during laser   29.  Huang S, Sing SL,  Yeong WY. Selective  laser melting of
               powder bed fusion. Virtual Phys Prototyp. 2023;18(1):e2235324.  Ti42Nb composite powder and the effect of laser re-melting.
                                                                  Key Eng Mater. 2019;801:270-275.
               doi: 10.1080/17452759.2023.2235324
                                                                  doi: 10.4028/www.scientific.net/KEM.801.270
            18.  Huang S, Kumar P, Yeong WY, Narayan RL, Ramamurty  U.
               Fracture behavior of laser powder bed fusion fabricated   30.  Sing SL, Wiria FE, Yeong WY. Selective laser melting of
                                                                  titanium alloy with 50 wt% tantalum: Effect of laser process
               Ti41Nb via in-situ alloying. Acta Mater. 2022;225:117593.
                                                                  parameters on part quality. Int J Refract Met Hard Mater.
               doi: 10.1016/j.actamat.2021.117593                 2018;77:120-127.

            Volume 3 Issue 3 (2024)                         13                             doi: 10.36922/msam.3506
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