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Research Article

Ti6Al4V matrix composites fabricated by laser powder bed fusion in dilute nitrogen

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Pages 207-214 | Received 18 Oct 2021, Accepted 18 Jan 2022, Published online: 11 Feb 2022

References

  • Bilgin GM, Esen Z, Akın ŞK, et al. Optimization of the mechanical properties of Ti-6Al-4V alloy fabricated by selective laser melting using thermohydrogen processes. Mater Sci Eng A. 2017;700:574–582.
  • Yang Y, Zhang C, Dai Y, et al. Tribological properties of titanium alloys under lubrication of SEE oil and aqueous solutions. Tribol Int. 2017;109:40–47.
  • Muhammad R, Hussain MS, Maurotto A, et al. Analysis of a free machining α+β titanium alloy using conventional and ultrasonically assisted turning. J Mater Process Technol. 2014;214(4):906–915.
  • Arrazola PJ, Garay A, Iriarte LM, et al. Machinability of titanium alloys (Ti6Al4V and Ti555.3). J Mater Process Technol. 2009;209(5):2223–2230.
  • Tong J, Bowen CR, Persson J, et al. Mechanical properties of titanium-based Ti–6Al–4V alloys manufactured by powder bed additive manufacture. Mater Sci Technol. 2016;33(2):138–148.
  • Garibaldi M, Ashcroft I, Simonelli M, et al. Metallurgy of high-silicon steel parts produced using selective laser melting. Acta Mater. 2016;110:207–216.
  • Ökten K, Biyikoğlu A. Development of thermal model for the determination of SLM process parameters. Opt Laser Technol. 2021;137:106825.
  • Attar H, Calin M, Zhang LC, et al. Manufacture by selective laser melting and mechanical behavior of commercially pure titanium. Mater Sci Eng A. 2014;593:170–177.
  • Kelly CN, Evans NT, Irvin CW, et al. The effect of surface topography and porosity on the tensile fatigue of 3D printed Ti-6Al-4V fabricated by selective laser melting. Mater Sci Eng C Mater Biol Appl. 2019 May;98:726–736.
  • Kasperovich G, Haubrich J, Gussone J, et al. Correlation between porosity and processing parameters in TiAl6V4 produced by selective laser melting. Mater Des. 2016;105:160–170.
  • Pal S, Lojen G, Hudak R, et al. As-fabricated surface morphologies of Ti-6Al-4V samples fabricated by different laser processing parameters in selective laser melting. Addit Manuf. 2020;33:101147.
  • Pal S, Lojen G, Kokol V, et al. Evolution of metallurgical properties of Ti-6Al-4V alloy fabricated in different energy densities in the selective laser melting technique. J Manuf Process. 2018;35:538–546.
  • Thijs L, Verhaeghe F, Craeghs T, et al. A study of the microstructural evolution during selective laser melting of Ti–6Al–4V. Acta Mater. 2010;58(9):3303–3312.
  • Song B, Dong S, Zhang B, et al. Effects of processing parameters on microstructure and mechanical property of selective laser melted Ti6Al4V. Mater Des. 2012;35:120–125.
  • Wang J, Guo X, Xiao L, et al. Effect of B4C on the microstructure and mechanical properties of As-cast TiB + TiC/TC4 composites. Acta Metall Sin (Engl Lett). 2014;27(2):205–210.
  • Patil AS, Hiwarkar VD, Verma PK, et al. Effect of TiB2 addition on the microstructure and wear resistance of Ti-6Al-4V alloy fabricated through direct metal laser sintering (DMLS). J Alloys Compd. 2019;777:165–173.
  • Su Y, Luo S-C, Meng L, et al. Selective laser melting of in situ TiB/Ti6Al4V composites: formability, microstructure evolution and mechanical performance. Acta Metall Sin (Eng Lett). 2020;33(6):774–788.
  • Wang DW, Zhou YH, Shen J, et al. Selective laser melting under the reactive atmosphere: a convenient and efficient approach to fabricate ultrahigh strength commercially pure titanium without sacrificing ductility. Mater Sci Eng A. 2019;762:138078.
  • Kundu S, Hussain M, Kumar V, et al. Direct metal laser sintering of TiN reinforced Ti6Al4V alloy based metal matrix composite: fabrication and characterization. Int J Adv Manuf Technol. 2018;97(5–8):2635–2646.
  • Wei WH, Wu WJ, Fan SQ, et al. In-situ laser additive manufacturing of Ti6Al4V matrix composites by gas–liquid reaction in dilute nitrogen gas atmospheres. Mater Des. 2021;202:109578.
  • Wei WH, Zhang Q, Wu WJ, et al. Agglomeration-free nanoscale TiC reinforced titanium matrix composites achieved by in-situ laser additive manufacturing. Scr Mater. 2020;187:310–316.
  • Wei WH, Shen J. Effect of laser energy density on microstructures and mechanical properties of selective laser melted Ti-6Al-4V alloy. Int J Mater Res. 2018;109(5):437–442.
  • Gu D, Hagedorn Y-C, Meiners W, et al. Densification behavior, microstructure evolution, and wear performance of selective laser melting processed commercially pure titanium. Acta Mater. 2012;60(9):3849–3860.
  • Moatimid GM, Hassan MA. The instability of an electrohydrodynamic viscous liquid micro-cylinder buried in a porous medium: effect of thermosolutal Marangoni convection. Math Probl Eng. 2013;2013:1–14.
  • Yilbas BS, Akhtar S, Aleem BJA, et al. Laser gas-assisted processing of carbon coated and TiC embedded Ti–6Al–4V alloy surface. Appl Surf Sci. 2010;257(2):531–537.
  • Li S, Sun B, Imai H, et al. Powder metallurgy titanium metal matrix composites reinforced with carbon nanotubes and graphite. Compos Part A: Appl Sci Manuf. 2013;48:57–66.
  • Cayron C, Buffat PA, Beffort O, et al. Effect of SiO2 binder on the precipitation state of an AlCu4Mg1Ag/saffil composite. J Mater Sci. 1999;34:905–915.
  • Mohseni H, Nandwana P, Tsoi A, et al. In situ nitrided titanium alloys: microstructural evolution during solidification and wear. Acta Mater. 2015;83:61–74.
  • Wang W-r, Qi W, Zhang X-l, et al. Superior corrosion resistance-dependent laser energy density in (CoCrFeNi)95Nb5 high entropy alloy coating fabricated by laser cladding. Int J Miner Metall Mater. 2021;28(5):888–897.
  • Yamada O, Hachiya M, Nakane S, et al. Simultaneous synthesis and sintering of α-Ti(N) by self-propagating high-temperature combustion under nitrogen pressure. J Mater Sci Lett. 1999;18(5):363.
  • Liu Y, Yang Y, Mai S, et al. Investigation into spatter behavior during selective laser melting of AISI 316L stainless steel powder. Mater Des. 2015;87:797–806.
  • Vilaro T, Colin C, Bartout JD. As-fabricated and heat-treated microstructures of the Ti-6Al-4V alloy processed by selective laser melting. Metall Mater Trans A. 2011;42(10):3190–3199.

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