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May 10, 2026Metals0 citationsOpen Access

Effect of Trace Titanium on Hydrogen Embrittlement Resistance of 25Mn High-Manganese Steel

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TSTaoran ShaoUniversity of Science and Technology BeijingBWBingbing WuUniversity of Science and Technology BeijingYWYanxin WuUniversity of Science and Technology Beijing

Key Points

  • The aim is to investigate how trace titanium addition affects hydrogen embrittlement resistance in high-manganese steel.
  • Addition of trace titanium (0.021 wt%) to high-manganese steel
  • Conducted Electron Backscatter Diffraction, TEM, SEM, and Slow Strain Rate Tensile tests
  • Analyzed microstructure and mechanical properties after hydrogen charging
  • Elongation loss in 25Mn-Ti was reduced from 18.4% to 9.3% after 72 hours of hydrogen charging
  • Fracture surfaces showed ductile dimple morphology in 25Mn-Ti, compared to brittle fracture in 25Mn
  • Increased Kernel Average Misorientation retention and more uniform strain distribution in hydrogen-charged 25Mn-Ti

Abstract

High-manganese steel has emerged as a potential alternative material to austenitic stainless steel for liquid hydrogen storage and transportation environments, owing to its superior mechanical characteristics and limited hydrogen diffusivity. However, its hydrogen embrittlement (HE) susceptibility limits its engineering applications. This study investigates the effect of microstructural regulation through trace titanium (Ti, 0.021 wt%) addition on HE resistance in high-manganese steel. By means of Electron Backscatter Diffraction (EBSD), TEM, SEM, and Slow Strain Rate Tensile (SSRT) tests, the effects of Ti on the microstructure, mechanical properties, and HE susceptibility of high-manganese steel are systematically investigated. The results show that the addition of Ti did not significantly alter the average austenite grain size or phase composition, but it generated a large number of Ti(C,N) nanoscale precipitates with sizes ranging from 20 to 70 nm within the matrix. The elongation loss of the 25Mn-Ti specimen was significantly lower than that of the 25Mn specimen when hydrogen-charged for 72 h, decreasing from 18.4% to 9.3%. The fracture surfaces consistently exhibited ductile dimple morphology, whereas 25Mn steel demonstrated significant cleavage-induced brittle fracture. EBSD analysis revealed that hydrogen-charged 25Mn-Ti steel exhibited higher Kernel Average Misorientation (KAM) value retention rate and more uniform grain strain distribution, indicating enhanced microstructural deformation compatibility. The main mechanism was that Ti pre-formed nanoscale Ti(C,N) precipitates during the preparation of 25Mn high-manganese steel, which played a key role in inhibiting HE. These precipitates altered hydrogen diffusion behavior and distribution patterns, reduced stress concentration levels, and inhibited hydrogen-induced crack initiation. This work is of great significance for improving the HE resistance of high-manganese steels.

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Cite This Study

Shao et al. (2026) studied this question.

synapsesocial.com/papers/6a0021fec8f74e3340f9cf40https://doi.org/10.3390/met16050509
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