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Enhancing impact toughness of Q-P-T plain steels via multiscale design: Resolving the strength-toughness balance

  • Liyang Zeng
  • , Jiazhi Zhang
  • , Jie Li
  • , Shuai Wang
  • , Xiangyu Song
  • , Yonghua Rong
  • , Gan Li
  • , Ying Li
  • , Xunwei Zuo*
  • , Nailu Chen*
  • , Jian Lu*
  • *Corresponding author for this work
  • Shanghai Jiao Tong University
  • City University of Hong Kong
  • City University of Hong Kong Shenzhen Research Institute
  • CAS - Shanghai Institute of Optics and Fine Mechanics

Research output: Contribution to journalArticlepeer-review

Abstract

The impact toughness of steel is crucial for structural applications under dynamic loading. Current steel development trends emphasize enhancing both strength and toughness in cost-effective plain steels, resolving the inherent strength-toughness balance. Here, we propose a novel multiscale design to significantly improve the impact toughness of quenching-partitioning-tempering plain steel. By leveraging the dislocation across martensite/austenite interface effect, we optimize the retained austenite content to approximately 10 %, evidently reduce brittle strain-induced twinned martensite while maintaining exceptional ductility. Furthermore, surface mechanical attrition treatment induces a residual compressive stress in sample surface accompanying with microstructure gradient and improving energy absorption during impact. This strategy achieves a fourfold increase in impact toughness, resolving the strength-toughness balance. The approach not only demonstrates the potential of multiscale design on compressive stress gradient accompanying microstructure gradient to optimize steel performance but also provides a scalable, cost-effective solution for high-performance materials in dynamic loading application.

Original languageEnglish
Article number116890
JournalScripta Materialia
Volume268
DOIs
StatePublished - 1 Nov 2025
Externally publishedYes

Keywords

  • High-strength low-alloy (HSLA) steels
  • Martensitic phase transformation
  • Multiscale design
  • Residual stress
  • Toughness

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