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March 26, 2026Journal of Materials Research and Technology2 citationsOpen Access

Synergistic enhancement of cryogenic tensile properties and toughness in HSLA steel through intercritical heat treatment

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JLJun LüJLJ P LiuYHYuhe Huang

Key Points

  • This research aims to understand the effects of intercritical heat treatment on the microstructure and performance of HSLA steel at cryogenic temperatures.
  • Conducted intercritical heat treatment on HSLA steel samples.
  • Utilized Thermo-Calc and DICTRA simulations for microstructural analysis.
  • Performed multiscale characterization to study microstructural changes.
  • Compared QIT and QT conditions on mechanical properties at room and cryogenic temperatures.
  • QIT specimen showed a significant increase in ultimate tensile strength (1153 MPa) at −196 °C.
  • Yield strength for QIT at −196 °C reached 1038 MPa, exceeding QT values.
  • Total elongation for QIT was recorded at 25.1%, outperforming QT's 19.8%.
  • Impact energy significantly rose to 116.5 J for QIT compared to 9.3 J for QT.
  • The enhanced properties were attributed to increased screw dislocation density and solute segregation.

Abstract

This study elucidates the microstructural evolution during intercritical heat treatment of a high-strength low-alloy (HSLA) marine steel and its impact on cryogenic performance. Thermo-Calc and DICTRA simulations, combined with multiscale characterization, reveal austenite reversion and elemental partitioning. The resulting hierarchical microstructure comprises annealed martensite, lath-shaped intercritical ferrite, and minor retained austenite (RA), with notable C, Mn, and Ni enrichment in the reversed austenite. Compared to the quenched and tempered (QT) condition, the intercritically quenched and tempered (QIT) specimen exhibits a comprehensive enhancement in strength, ductility, and toughness at both room and cryogenic temperatures. At −196 °C, its ultimate tensile strength, yield strength, total elongation, and impact energy reach 1153 MPa, 1038 MPa, 25.1%, and 116.5 J, respectively. In contrast, the QT specimen achieves corresponding values of 1112 MPa, 1101 MPa, 19.8%, and 9.3 J. The pronounced increase in yield strength at −196 °C for the QIT specimen is driven primarily by its elevated screw dislocation density, which governs the low-temperature flow stress, and augmented by substantial solute segregation at interfaces and within hard domains, which raises the threshold stress for dislocation motion through static pinning. Furthermore, the heterogeneous lamellar microstructure, with its alternating hard and soft domains, facilitates internal stress/strain accommodation during cryogenic deformation, thereby enhancing the strain hardening capacity and ultimately improving ductility. This combined effect, together with microstructural refinement and a low-temperature solid-solution softening, results in a significantly higher J -integral and superior cryogenic toughness in the QIT specimen.

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Cite This Study

Lü et al. (2026) studied this question.

synapsesocial.com/papers/69c4cc75fdc3bde448917bb1https://doi.org/10.1016/j.jmrt.2026.03.199
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