Metals Advances ›› 2026, Vol. 43: 44-56.DOI: 10.1016/j.metadv.2026.02.019

• Research Article • Previous Articles     Next Articles

Enhanced strength-ductility-toughness synergy of friction stir-welded ultrahigh-strength medium-Mn steel joints via post-weld annealing

Leping Wanga,b, Zhiwei Wangb,*(), Peng Xueb, Hao Zhangb,*(), Zhen Zhangb, Fengchao Liub, Lihui Wub, Dingrui Nib, Bolv Xiaob, Zongyi Mab   

  1. a School of Materials Science and Engineering, Northeastern University, Shenyang 110819, China
    b Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China
  • Received:2025-07-17 Revised:2025-11-10 Accepted:2025-11-17 Online:2026-05-10 Published:2026-02-12
  • Contact: Zhiwei Wang, Hao Zhang

Abstract:

Ultrahigh-strength medium-Mn steels are one of the promising third-generation advanced high-strength steels with strength-ductility-toughness synergy. However, it has been a challenge to preserve the superior mechanical properties of ultrahigh-strength medium-Mn steels after fusion welding due to the high heat input-induced transformation of metastable microstructures. In this work, ultrahigh-strength medium-Mn steel plates with 1 GPa strength were joined by a solid-state welding technique—friction stir welding. Defect-free joints were fabricated under a specific parameter window. Transformation of austenite to quenched martensite with high hardness occurred in the nugget zones (NZs). All the as-welded joints exhibited equal strengths but significant losses in ductility compared to the base metal (BM). Moreover, the impact energies of the NZs were greatly reduced to less than 6 J, which induced premature failures of the joints. After post-weld annealing at an intercritical temperature, reverse transformation of austenite occurred in the NZs, producing a composited structure of ultrafine ferrite, martensite, and austenite. The impact energies of the annealed NZs increased to over 23 J, which was much higher than the 2.2 J measured in the as-welded counterparts. The hardness of the NZs was significantly reduced, enabling sizeable tensile elongations of the joints close to that of the BM. Consequently, enhanced strength-ductility-toughness synergy of ultrahigh-strength medium-Mn steel joints was achieved by post-weld annealing. This work demonstrates a viable method to fabricate ultrahigh-strength medium-Mn steel joints with high performance.

Key words: Ultrahigh-strength medium-Mn steel, Friction stir welding, Intercritical annealing, Microstructure evolution, Strength-ductility-toughness synergy