Laser cladding as repair technology for Ti–6Al–4V alloy: Influence of building strategy on microstructure and hardness
Author:
Funder
Walloon Region and the Interuniversity Attraction Poles Programme
Publisher
Elsevier BV
Subject
Mechanical Engineering,Mechanics of Materials,General Materials Science
Reference25 articles.
1. Direct laser fabrication of three dimensional components using SC420 stainless steel;Ravi;Mater. Des.,2013
2. A study of the microstructural evolution during selective laser melting of Ti6Al4V;Thijs;Acta Mater.,2010
3. Research status of laser cladding on titanium and its alloys: a review;Weng;Mater. Des.,2014
4. Mitigation of abrasive wear damage of Ti–6Al–4V by laser surface alloying;Adebiyi;Mater. Des.,2015
5. Microstructural evolution in laser-deposited multilayer Ti–6Al–4V builds: part 1. Microstructural characterization;Kelly;Metall. Mater. Trans. A,2004
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1. Enhancing the tensile properties of laser repairing Ti-6Al-4V alloys: Optimization of strain distribution based on composition fine-turning;Journal of Materials Science & Technology;2024-12
2. Toward developing remanufactured Ti6Al4V alloys with high fatigue crack growth resistance by in-situ cooling during laser remanufacturing;International Journal of Fatigue;2024-10
3. Size effect and indenter shape dependence of indentation and scratching behavior for laser melting deposited Ti-6Al-4V alloy;Materials Science and Technology;2024-08-28
4. Numerical Investigation of the Effects of Process Parameters on Temperature Distribution and Cladding-Layer Height in Laser Cladding;Coatings;2024-08-12
5. Microstructure and wear resistance of NiTiNb ternary alloy coatings fabricated in situ by laser cladding;Surface and Coatings Technology;2024-07
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