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


               doi: 10.1016/j.ijrmhm.2018.08.006                  doi: 10.2320/matertrans.45.2776
            31.  Sing SL, Wiria FE, Yeong WY. Selective laser melting of   36.  Fischer M, Joguet D, Robin G, Peltier L, Laheurte P. In situ
               lattice structures: A statistical approach to manufacturability   elaboration of a binary Ti-26Nb alloy by selective laser
               and  mechanical  behavior.  Robot  Comput Integr  Manuf.   melting of elemental titanium and niobium mixed powders.
               2018;49:170-180.                                   Mater Sci Eng C Mater Biol Appl. 2016;62:852-859.
               doi: 10.1016/j.rcim.2017.06.006                    doi: 10.1016/j.msec.2016.02.033
            32.  Huang S, Yeong WY. Laser Re-scanning Strategy in Selective   37.  Tang C, Le KQ, Wong CH. Physics of humping formation
               Laser Melting for Part Quality Enhancement: A Review. In:   in laser powder bed fusion.  Int J Heat Mass Transf.
               Proceedings of the 3  International Conference on Progress in   2020;149:119172.
                             rd
               Additive Manufacturing (ProAM 2018); 2018.         doi: 10.1016/j.ijheatmasstransfer.2019.119172
               doi: 10.25341/D4GP4J                            38.  Bönisch M, Panigrahi A, Calin M, et al. Thermal stability
            33.  Gao M, He D, Cui L, et al. Investigation on the microstructure   and latent heat of Nb-rich martensitic Ti-Nb alloys. J Alloys
               and mechanical properties of the ti-ta alloy with unmelted   Compd. 2017;697:300-309.
               ta particles by laser powder bed fusion. Materials (Basel).      doi: 10.1016/j.jallcom.2016.12.108
               2023;16(6):2208.
                                                               39.  Wang W, Zhang X, Mei W, Sun J. Role of omega phase evolution
               doi: 10.3390/ma16062208                            in plastic deformation of  twinning-induced plasticity  β
            34.  Long M, Rack HJ. Titanium alloys in total joint   Ti-12V-2Fe-1Al alloy. Mater Des. 2020;186:108282.
               replacement--a materials science perspective. Biomaterials.      doi: 10.1016/j.matdes.2019.108282
               1998;19(18):1621-1639.
                                                               40.  Lai MJ, Tasan CC, Zhang J, Grabowski B, Huang LF,
               doi: 10.1016/s0142-9612(97)00146-4                 Raabe   D. Origin of shear induced  β to  ω transition in
                                                                  Ti-Nb-based alloys. Acta Mater. 2015;92:55-63.
            35.  Ozaki T, Matsumoto H, Watanabe S, Hanada S. Beta ti alloys
               with low young’s modulus. Mater Trans. 2004;45(8):2776-2779.     doi: 10.1016/j.actamat.2015.03.040













































            Volume 3 Issue 3 (2024)                         14                             doi: 10.36922/msam.3506
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