Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/114156
Title: Microstructural evolution and mechanical properties of the in situ La₂O₃ particle-reinforced titanium alloy prepared by dual-wire-arc directed energy deposition
Authors: Yu, Z 
Yu, S
Deng, F
Yu, G
Fu, MW 
Issue Date: 25-Sep-2024
Source: Additive manufacturing, 25 Sept 2024, v. 96, 104583
Abstract: TA15 titanium alloy components produced via wire-arc direct energy deposition (WA-DED) face challenges related to grain coarsening, suboptimal mechanical properties, and pronounced anisotropy. To address these issues, the current study employed a dual-wire-arc directed energy deposition (DWA-DED) approach to fabricating the alloys by introducing LaF3 quantitatively into the deposition metal using a metal cored wire. The incorporation of LaF3 was predicated on the in situ reaction: 6[O] + 6[H] + 2 LaF3 = La2O3 + 6HF. This reaction effectively removed [H] and [O] from the molten pool, diminishing the presence of the brittle intermetallic compounds and concurrently enhancing toughness. The addition of LaF3 resulted in a notable 56.8% increase in elongation and a 33.1% boost in impact toughness. Moreover, the DWA-DED quantitatively introduced [La], facilitating the precipitation of La2O3 particles. This precipitation reduced the size of primary columnar grains (PCGs) and promoted heterogeneous nucleation of α-laths. As a result, the elongation of the PCGs’ boundaries diversified the α phase transformation, resulting in the reduced multiple of uniform density (MUD) along the building direction. As a result, the isotropy ratio between vertical and horizontal directions also increased, underscoring the efficacy of LaF3 in mitigating anisotropic behaviour in WA-DEDed titanium alloys.
Keywords: Dual-wire-arc directed energy deposition
Lanthanum
Mechanical properties
Microstructure evolution
TA15 titanium alloy
Publisher: Elsevier BV
Journal: Additive manufacturing 
ISSN: 2214-8604
EISSN: 2214-7810
DOI: 10.1016/j.addma.2024.104583
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