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March 29, 2026Journal of Materials Research and Technology2 citationsOpen Access

High strain rate superplasticity in a cold rolled Fe35Mn8Al0.3C low-density steel

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YLYang LiuQKQingfeng KangJZJing Zhang

Key Points

  • The aim is to investigate the high strain rate superplasticity in cold rolled Fe-35Mn-8Al-0.3C steel.
  • Conducted high temperature deformation tests at temperatures between 700 to 900 °C.
  • Varied strain rates from 1×10^-4 s^-1 to 1×10^-1 s^-1.
  • Analyzed microstructure changes and calculated superplasticity activation energy.
  • Achieved a fracture elongation of 633% at a strain rate of 1×10^-2 s^-1 and 800 °C.
  • Observed a transition from a banded to an equiaxed grain microstructure indicating dynamic recrystallization.
  • Determined superplasticity activation energy between 125.9-185.3 kJ/mol and a strain rate sensitivity of 0.32-0.37.

Abstract

The high temperature deformation of the 80% cold rolled Fe-35Mn-8Al-0.3C low-density steel were carried out under different deformation temperatures ranging from 700 to 900 °C and varied strain rates from 1× 10 -4 s -1 to 1×10 -1 s -1 . It was found that an excellent fracture elongation of 633% could be reached at initial deformation strain rate at 1×10 -2 s -1 under 800 °C. The microstructure was evolved from a banded cold rolled microstructure to an equiaxed grained microstructure, indicating a dynamic recrystallization taking place during high temperature deformation process. The average grain size of both β-Mn/γ phase and the fraction of γ-phase are increased with increasing of deformation temperature but decreased with the increasing of deformation strain rate. The superplasticity activation energy is found to be 125.9-185.3 kJ/mol and a strain rate sensitivity of 0.32-0.37 were detected based on the analysis on the stress-strain rate relationship, indicating a dislocation gliding associated grain boundary/phase boundary sliding mechanism. This research not only reveals the high strain rate superplasticity of the cold-rolled low-density steel, but also indicates that the combination of boundary sliding and dislocation glide could be a promising mechanism for achieving high strain rate superplasticity.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/69c8c195de0f0f753b39bdc3https://doi.org/10.1016/j.jmrt.2026.03.220
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