Achieving 2.2 GPa Ultra-High Strength in Low-Alloy Steel Using a Direct Quenching and Partitioning Process

被引:1
|
作者
Niu, Gang [1 ]
Jin, Donghao [1 ]
Wang, Yong [2 ]
Chen, Haoxiu [3 ]
Gong, Na [4 ]
Wu, Huibin [1 ]
机构
[1] Univ Sci & Technol Beijing, Collaborat Innovat Ctr Steel Technol, Beijing 100083, Peoples R China
[2] Nanyang Technol Univ, Sch Mat Sci & Engn, Singapore 639798, Singapore
[3] Univ Toronto, Dept Mat Sci & Engn, Toronto, ON M5S 3E4, Canada
[4] ASTAR, Inst Mat Res & Engn IMRE, 2 Fusionopolis Way, Singapore 138634, Singapore
基金
中国国家自然科学基金;
关键词
2.2 GPa ultra-high strength steel; TMCP-DQP process; martensite; retained austenite; mechanical properties; MECHANICAL-PROPERTIES; RETAINED AUSTENITE; TENSILE PROPERTIES; MICROSTRUCTURE; STABILITY; EVOLUTION; TRANSFORMATION; TEMPERATURE; DUCTILITY; CARBIDE;
D O I
10.3390/ma16247533
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Advanced high-strength steels (AHSS) have a wide range of applications in equipment safety and lightweight design, and enhancing the strength of AHSS to the ultra-high level of 2 GPa is currently a key focus. In this study, a new process of thermo-mechanical control process followed by direct quenching and partitioning (TMCP-DQP) was developed based on Fe-0.4C-1Mn-0.6Si (wt.%) low-alloy steel, and the effects of microstructure evolution on mechanical properties under TMCP-DQP process and conventional hot rolled quenched and tempered process (HR-QT) were comparatively studied. The results show that the TMCP-DQP process not only shortened the processing steps but also achieved outstanding comprehensive mechanical properties. The TMCP-DQP steel exhibited a tensile strength of 2.23 GPa, accompanied by 11.9% elongation and a Brinell hardness of 624 HBW, with an impact toughness of 28.5 J at -20 degrees C. In contrast, the HR-QT steel exhibited tensile strengths ranging from 2.16 GPa to 1.7 GPa and elongations between 5.2% and 12.2%. The microstructure of TMCP-DQP steel primarily consisted of lath martensite, containing thin-film retained austenite (RA), nanoscale rod-shaped carbides, and a minor number of nanoscale twins. The volume fraction of RA reached 7.7%, with an average carbon content of 7.1 at.% measured by three-dimensional atom probe tomography (3DAP). Compared with the HR-QT process, the TMCP-DQP process resulted in a finer microstructure, with a prior austenite grain (PAG) size of 11.91 mu m, forming packets and blocks with widths of 5.12 mu m and 1.63 mu m. The TMCP-DQP process achieved the ultra-high strength of low-alloy steel through the synergistic effects of grain refinement, dislocation strengthening, and precipitation strengthening. The dynamic partitioning stage stabilized the RA through carbon enrichment, while the relaxation stage reduced a small portion of the dislocations generated by thermal deformation, and the self-tempering stage eliminated internal stresses, all guaranteeing considerable ductility and toughness. The TMCP-DQP process may offer a means for industries to streamline their manufacturing processes and provide a technological reference for producing 2.2 GPa grade AHSS.
引用
收藏
页数:16
相关论文
共 50 条
  • [21] ACHIEVING OPTIMUM PROPERTIES IN ULTRAHIGH-STRENGTH LOW-ALLOY STEEL
    SASTRY, CN
    PADMANABHAN, R
    DILIPKUMAR, D
    WOOD, WE
    METALS TECHNOLOGY, 1981, 8 (DEC): : 454 - 457
  • [22] A low-alloy high-carbon martensite steel with 2.6 GPa tensile strength and good ductility
    Wang, Yingjun
    Sun, Junjie
    Jiang, Tao
    Sun, Yu
    Guo, Shengwu
    Liu, Yongning
    ACTA MATERIALIA, 2018, 158 : 247 - 256
  • [23] HIGH-STRENGTH, LOW-ALLOY STEEL CASTINGS
    MISKA, KH
    MATERIALS ENGINEERING, 1985, 101 (01): : 37 - 40
  • [24] Structure and Properties of High-Strength Low-Alloy Cold-Resistant Steel after Reheat and Direct Quenching with Tempering
    Sych O.V.
    Khlusova E.I.
    Yashina E.A.
    Svyatysheva E.V.
    Vasilieva E.A.
    Inorganic Materials: Applied Research, 2020, 11 (06) : 1299 - 1306
  • [25] Achieving high tensile properties and impact toughness in ultrahigh strength lean alloy steel by quenching and partitioning treatment
    Wang, Lirong
    Liang, Yilong
    Zhao, Fei
    Xu, Fahong
    Lei, Lei
    Long, Shaolei
    Yang, Ming
    Jiang, Yun
    ARCHIVES OF CIVIL AND MECHANICAL ENGINEERING, 2023, 24 (01)
  • [26] Achieving high tensile properties and impact toughness in ultrahigh strength lean alloy steel by quenching and partitioning treatment
    Lirong Wang
    Yilong Liang
    Fei Zhao
    Fahong Xu
    Lei Lei
    Shaolei Long
    Ming Yang
    Yun Jiang
    Archives of Civil and Mechanical Engineering, 24
  • [27] Achieving an ultra-high strength in a low alloyed Al alloy via a special structural design
    Zeng, X. H.
    Xue, P.
    Wu, L. H.
    Ni, D. R.
    Xiao, B. L.
    Ma, Z. Y.
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2019, 755 : 28 - 36
  • [28] Hot-Rolling and a Subsequent Direct-Quenching Process Enable Superior High-Cycle Fatigue Resistance in Ultra-High Strength Low Alloy Steels
    Baek, Min-Seok
    Kim, Young-Kyun
    Park, Tae-Won
    Ham, Jinhee
    Lee, Kee-Ahn
    MATERIALS, 2020, 13 (20) : 1 - 17
  • [29] Dynamic constitutive behavior investigation of a novel low alloy ultra-high strength steel
    Lu, Tie
    Li, Yong
    Zhao, Hongjin
    Wang, Chunxu
    Han, Shun
    MATERIALS RESEARCH EXPRESS, 2021, 8 (01)
  • [30] Effect of Austenization Temperature on the Martensitic Transformation in a Low-alloy Ultra-high-strength Steel
    Qiao, Zhixia
    Zhang, Dantian
    Liu, Yongchang
    Yan, Zesheng
    MECHANICAL, MATERIALS AND MANUFACTURING ENGINEERING, PTS 1-3, 2011, 66-68 : 1797 - +