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◆ Advanced Light Materials2026-04-20· Materials science

Tensile deformation behavior of Ti-Nb graded alloy fabricated by direct laser deposition

Zihao Tang, Gang Zhou, Hui Xing, Zhenbo Zhang, Kun Lin, Kai Zhang, Jiayang RenXu, Haomin Zeng, Yi Yang

原始摘要(英文原文)· Original abstract
Compositional gradient titanium alloys are one of the research directions for novel biomedical materials. In this work, Ti-30Nb/Ti-40Nb gradient titanium alloy was fabricated using direct laser deposition (DLD) additive manufacturing technology. The room-temperature tensile deformation behavior of this gradient structure was investigated using in-situ electron backscatter diffraction (EBSD). The as-solution-treated structure consists of β phase and α″ martensite, with the gradual increase in volume fraction of α″ martensite from the Ti-30Nb region to the Ti-40Nb region. The Nb content regulates the thermal and mechanical stability of the β phase, resulting in different deformation behavior in the Ti-30Nb region, Ti-30Nb/Ti-40Nb transition zone and Ti-40Nb region. In the Ti-30Nb region, the β phase exhibits the weakest stability, with deformation mechanism primarily driven by dislocation slip, stress-induced αʺ martensitic (SIM α″) transformation, and {011}α″ compound twinning. In the Ti-30Nb/Ti-40Nb transition zone, the β phase exhibits moderate stability, with multiple deformation mechanisms working synergistically during tensile deformation. The αʺ martensite still deforms via {011}αʺ compound twinning and dislocation slip, while the β matrix deforms via dislocation slip, SIM α″ transformation, and {332}<113>β twinning. In the Ti-40Nb region the high stability of the β phase fundamentally suppresses the the SIM α″ transformation, making dislocation slip, shearing and limited {332}<113>β twinning the main deformation mechanisms. Furthermore, the deformation behavior is highly dependent on the crystallographic orientation of the β grains.
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