Hangrui Liu, Bingbing Wu
This study systematically investigates the effect of trace Ti addition on the impact toughness and underlying deformation mechanisms of high-Mn austenitic steel from 298 K to 4.2 K through instrumented Charpy impact testing, dynamic J-R curve analysis, and multi-scale microstructural characterization (SEM, TEM). The results show that Ti addition leads to the formation of Ti(C,N) precipitations, which act as microcrack initiation sites and significantly reduce the impact-absorbed energy at room temperature (298 K) from 249 J to 189 J. However, as the temperature decreases to liquid nitrogen (77 K) and liquid helium (4.2 K) temperatures, the impact toughness of the Ti-added steel does not deteriorate further and remains comparable to that of the Base steel. This temperature-dependent behavior originates from a transition in the dominant deformation mode. At room and moderately low temperatures, deformation is primarily governed by dislocation slip, whose strong interaction with coarse precipitates leads to premature cracking. At cryogenic temperatures, the significantly reduced stacking fault energy (SFE) shifts the deformation mechanism to the predominant formation of high-density nano-twins. These dense deformation twins enhance the matrix via the dynamic Hall–Petch effect and mitigate the detrimental effect of precipitates by alleviating interactions between dislocations and precipitates.
@article{a153865c-abf1-4f9d-b9ac-157fbe0f4437,
title={2026 Liu Ti Precipitation Impact Toughness High Mn Steel},
author={Hangrui Liu and Bingbing Wu},
year={2026},
language={en}
}TY - JOUR TI - 2026 Liu Ti Precipitation Impact Toughness High Mn Steel AU - Hangrui Liu AU - Bingbing Wu PY - 2026 LA - en ER -
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The irradiation-induced precipitation of Mn-Ni-rich precipitates (MNPs) or Mn-Ni-Si-rich precipitates (MNSPs) is the primary cause of embrittlement in
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This chapter discusses metal casting processes, highlighting the diversity and common characteristics among them. The objective is to elucidate the fu
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