Dada, MPopoola, PMathe, Ntombizodwa RPityana, Sisa LAdeosun, S2022-01-272022-01-272022-03Dada, M., Popoola, P., Mathe, N.R., Pityana, S.L. & Adeosun, S. 2022. In-situ reactive synthesis and characterization of a high entropy alloy coating by laser metal deposition. <i>International Journal of Lightweight Materials and Manufacture, 5(1).</i> http://hdl.handle.net/10204/122442588-8404https://doi.org/10.1016/j.ijlmm.2021.09.002http://hdl.handle.net/10204/12244In this study, we investigate the influence of in situ reactive synthesis of Ti6Al4V– AlCoCrFeNiCu high entropy alloys by laser metal deposition on the microstructural and mechanical properties of the as-built alloy as opposed to the traditional method of mixing powders via a ball mill prone to contamination and segregation. We explore the capability of a new alloy design by combining two base alloys via in situ reactive alloying, delivering the Ti6Al4V and AlCoCrFeNiCu high entropy alloy powders from multiple powder feeders and regulating their feed rate ratios. The nano mechanical, tribological and microstructural morphologies of the alloys were characterized using a nanoindentation tester, a tribometer, XRD and SEM, respectively. The results showed that satelliting the high entropy alloys powder and the Ti6Al4V powder fraction using double powder feedstock had a homogeneous distribution with dendritic structures. Optimization was achieved at a laser power of 1600 W, a scan speed of 12 mm/s and a powder flow rate of 2 g/min. The surface roughness (Ra) for Ti–6Al–4V, AlCoCrCuFeNi and (Ti–6Al–4V)-(AlCoCrCuFeNi) alloy was 0.5 µm, 0.63 µm and 0.80 µm, respectively. The high wear resistance of the novel Ti6Al4V– AlCoCrFeNiCu alloy was influenced by the hardness of the alloy which was higher than the Ti6Al4V alloy and the AlCoCrFeNiCu alloy. This study successfully defines the capabilities of in situ fabrication of high entropy alloys and presents novel techniques for multiple powder preparation of high entropy alloys using laser additive manufacturing, to permit the next generation of compositionally graded materials for aerospace components.FulltextenLaser depositionIn situ alloyingHigh entropy alloysTribologyNanoindentationIn-situ reactive synthesis and characterization of a high entropy alloy coating by laser metal depositionArticleDada, M., Popoola, P., Mathe, N. R., Pityana, S. L., & Adeosun, S. (2022). In-situ reactive synthesis and characterization of a high entropy alloy coating by laser metal deposition. <i>International Journal of Lightweight Materials and Manufacture, 5(1)</i>, http://hdl.handle.net/10204/12244Dada, M, P Popoola, Ntombizodwa R Mathe, Sisa L Pityana, and S Adeosun "In-situ reactive synthesis and characterization of a high entropy alloy coating by laser metal deposition." <i>International Journal of Lightweight Materials and Manufacture, 5(1)</i> (2022) http://hdl.handle.net/10204/12244Dada M, Popoola P, Mathe NR, Pityana SL, Adeosun S. In-situ reactive synthesis and characterization of a high entropy alloy coating by laser metal deposition. International Journal of Lightweight Materials and Manufacture, 5(1). 2022; http://hdl.handle.net/10204/12244.TY - Article AU - Dada, M AU - Popoola, P AU - Mathe, Ntombizodwa R AU - Pityana, Sisa L AU - Adeosun, S AB - In this study, we investigate the influence of in situ reactive synthesis of Ti6Al4V– AlCoCrFeNiCu high entropy alloys by laser metal deposition on the microstructural and mechanical properties of the as-built alloy as opposed to the traditional method of mixing powders via a ball mill prone to contamination and segregation. We explore the capability of a new alloy design by combining two base alloys via in situ reactive alloying, delivering the Ti6Al4V and AlCoCrFeNiCu high entropy alloy powders from multiple powder feeders and regulating their feed rate ratios. The nano mechanical, tribological and microstructural morphologies of the alloys were characterized using a nanoindentation tester, a tribometer, XRD and SEM, respectively. The results showed that satelliting the high entropy alloys powder and the Ti6Al4V powder fraction using double powder feedstock had a homogeneous distribution with dendritic structures. Optimization was achieved at a laser power of 1600 W, a scan speed of 12 mm/s and a powder flow rate of 2 g/min. The surface roughness (Ra) for Ti–6Al–4V, AlCoCrCuFeNi and (Ti–6Al–4V)-(AlCoCrCuFeNi) alloy was 0.5 µm, 0.63 µm and 0.80 µm, respectively. The high wear resistance of the novel Ti6Al4V– AlCoCrFeNiCu alloy was influenced by the hardness of the alloy which was higher than the Ti6Al4V alloy and the AlCoCrFeNiCu alloy. This study successfully defines the capabilities of in situ fabrication of high entropy alloys and presents novel techniques for multiple powder preparation of high entropy alloys using laser additive manufacturing, to permit the next generation of compositionally graded materials for aerospace components. DA - 2022-03 DB - ResearchSpace DP - CSIR J1 - International Journal of Lightweight Materials and Manufacture, 5(1) KW - Laser deposition KW - In situ alloying KW - High entropy alloys KW - Tribology KW - Nanoindentation LK - https://researchspace.csir.co.za PY - 2022 SM - 2588-8404 T1 - In-situ reactive synthesis and characterization of a high entropy alloy coating by laser metal deposition TI - In-situ reactive synthesis and characterization of a high entropy alloy coating by laser metal deposition UR - http://hdl.handle.net/10204/12244 ER -25281