Microstructure and Mechanical Properties of Gradient Nanostructured Q345 Steel Prepared by Ultrasonic Severe Surface Rolling

被引:0
|
作者
Ge C. [1 ]
Meng W. [2 ,3 ]
Feng H. [1 ]
Cui M. [1 ]
Dong L. [1 ]
Miao T. [1 ]
Huo Y. [1 ]
Wu J. [1 ]
Han J. [2 ,3 ]
机构
[1] Xuzhou XCMG Mining Machinery Co. LTD, Xuzhou
[2] CUMT-XCMG, Mining Intelligent Equipment Technology Research Institute, China University of Mining and Technology, Xuzhou
[3] School of Mechanical and Electrical Engineering, China University of Mining and Technology, Xuzhou
关键词
405.2 Construction Methods - 545.3 Steel - 753.3 Ultrasonic Applications - 951 Materials Science;
D O I
10.1155/2023/7705844
中图分类号
学科分类号
摘要
In this work, ultrasonic severe surface rolling (USSR), a new surface nanocrystallization technique, is used to prepare gradient nanostructure (GNS) on the commercial Q345 structural steel. The microstructure of the GNS surface layer is characterized by employing EBSD and TEM, and the result indicates that a nanoscale substructure is formed at the topmost surface layer. The substructures are composed of subgrains and dislocation cells and have an average size of 309.4 nm. The GNS surface layer after USSR processing for one pass has a thickness of approximately 300 μm. The uniaxial tensile measurement indicates that the yield strength of the USSR sample improves by 25.1% compared to the as-received sample with slightly decreased ductility. The nanoscale substructure, refined grains, high density of dislocations, and hetero-deformation-induced strengthening are identified as responsible for the enhanced strength. This study provides a feasible approach to improving the mechanical properties of structural steel for wide applications. © 2023 Chao Ge et al.
引用
收藏
相关论文
共 50 条
  • [11] Microstructure and mechanical properties of laser beam welded 10 mm-thick Q345 steel joints
    Xie, Weifeng
    Tu, Hao
    Nian, Keyu
    Zhang, Xiaobin
    WELDING INTERNATIONAL, 2024, 38 (01) : 34 - 44
  • [12] Microstructure and Properties of Laser Cladding AlxFeCoCrNiMn High Entropy Alloy of Q345 Steel
    Yan, Dongfang
    Shi, Chuanwei
    Wang, Jianyang
    Zhang, Yuanbin
    Sun, Junhua
    Wang, Yongbin
    Liu, Peng
    MATERIALS RESEARCH-IBERO-AMERICAN JOURNAL OF MATERIALS, 2023, 26
  • [13] Mechanical properties of Q345 structural steel after pre-fatigue loading
    Luo, Neng
    Zhou, Tiejun
    Zhang, Chuntao
    STRUCTURES, 2023, 56
  • [14] Precipitate effect on austenite grains of steel Q345 in direct hot rolling
    Mi, Zhenli
    Yu, Wei
    Chen, Yinli
    Cai, Qingwu
    Dong, Xiaohui
    Beijing Keji Daxue Xuebao/Journal of University of Science and Technology Beijing, 2002, 24 (05):
  • [15] Effect of Ultrasonic Rolling on Microstructure and Mechanical Properties of 45 Steel
    Xu Q.-J.
    Gong B.-M.
    Liu X.-G.
    Deng C.-Y.
    Wang D.-P.
    Surface Technology, 2022, 51 (01): : 339 - 347
  • [16] Research on mechanical properties of Q345 steel impacted on high temperature and dynamic shock load
    Hao, Pengfei
    Hou, Xiaobo
    Gao, Jiazhi
    Liu, Yong
    Shu, Xuefeng
    FRONTIERS OF GREEN BUILDING, MATERIALS AND CIVIL ENGINEERING, PTS 1-8, 2011, 71-78 : 1178 - +
  • [17] Mechanical properties of Q345 structural steel after artificial cooling from elevated temperatures
    Zhang, Chuntao
    Wang, Ruheng
    Zhu, Li
    JOURNAL OF CONSTRUCTIONAL STEEL RESEARCH, 2021, 176
  • [18] The Microstructure and Wear-resistant Properties of Laser Cladding Ni-based WC Alloy on Q345 Steel Surface
    Zhu, Shunmin
    Zhang, Yadong
    MECHATRONICS ENGINEERING, COMPUTING AND INFORMATION TECHNOLOGY, 2014, 556-562 : 189 - +
  • [19] Influence of hot rolling + heat treatment on microstructure and mechanical properties of NM500/Q345/NM500 composite plate
    Juan Li
    Cuirong Liu
    Yaohui Song
    Guanghui Zhao
    Lifeng Ma
    Qingxue Huang
    Journal of Materials Science, 2021, 56 : 6016 - 6030
  • [20] Effect of Laser Derusting Technology on Surface Residual Stress and Corrosion Properties of Q345 Steel
    Ren, Zhiguo
    Wang, Shuo
    Wang, Zhenxing
    Hao, Jun
    Liang, Jianming
    Surface Technology, 2024, 53 (19): : 164 - 172