Abstract
The plasticity is always detrimentally affected by the presence of the delta-ferrite (δ) phase in martensitic steels. This work presents a novel processing strategy employing successive warm-rolling, cold-rolling, and low-temperature annealing to achieve almost complete dissolution of the δphase in a martensitic steel containing Fe-12Cr-11Ni-1.1Mo-1.7Ti-0.3Al-0.01C (in wt. %). This novel δ-free martensitic steel is primarily composed of nanoscale α′ martensite accompanied with high-density dislocations, demonstrating a ∼4-fold increase in plastic strain (4.82±0.19 %) while maintaining an enhancement of ∼36.4 % in ultimate tensile strength (1855±18 MPa) compared with its δ-containing counterpart fabricated via the conventional method. Nano-grains deformation induces a substantial dislocation accumulation at delayed strains (i.e., >2 %), contributing to a sustained work-hardening capacity and thus preventing early necking. This mechanism allows for greater dislocation-mediated deformation, enabling the high-density dislocations to exhibit an outstanding plasticizing capability while maintaining significant dislocation strengthening.
| Original language | English |
|---|---|
| Article number | 104421 |
| Journal | International Journal of Plasticity |
| Volume | 192 |
| DOIs | |
| Publication status | Published - Sept 2025 |
Keywords
- Delta ferrite
- High strength-ductility synergy
- High-density dislocations
- Martensitic steel
- Nano martensite
ASJC Scopus subject areas
- General Materials Science
- Mechanics of Materials
- Mechanical Engineering
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