中国有色金属学报(英文版)
Transactions of Nonferrous Metals Society of China
| Vol. 35 No. 12 December 2025 |
(1. School of Materials Science and Engineering, Shanghai Institute of Technology, Shanghai 201408, China;
2. School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China)
Abstract:To simultaneously enhance the strength-plasticity synergy and resistance to hydrogen embrittlement (HE), the post-annealing treatment was conducted in a laser powder-bed fusion Ti-6Al-4V alloy to introduce reversible transformation. The microstructure, mechanical properties, and HE behavior of the alloy were analyzed by electron back-scattered diffraction, transmission electron microscopy, slow-strain-rate tensile test, hydrogen permeation and thermal desorption spectroscopy. The as-printed sample exhibited high strength but limited elongation and high HE sensitivity. When annealed at 550 °C, the elongation was improved but the hydrogen diffusion rate also increased, thus promoting the formation of brittle hydride. When annealed at 750 °C, the reversible transformation α''''→β→α'''' occurred and an α''''/β/α'''' sandwich structure formed, thereby enhancing HE resistance (reducing the total elongation loss to 12%) while maintaining high strength (~1116 MPa). The introduction of nanoscale β-phase and soft-oriented α'''' grain significantly inhibited hydride formation and hydrogen-induced crack propagation.
Key words: Ti-6Al-4V alloy; hydrogen embrittlement; strength-ductility synergy; post-annealing; reversible transformation


