Changes in microstructure and properties of weld heat-affected zone of high-strength low-alloy steel

被引:2
|
作者
Jia, Shu-jun [1 ]
Ma, Qi-lin [1 ,2 ]
Hou, Yu [3 ]
Li, Ba [1 ]
Zhang, He-song [1 ]
Liu, Qing-you [1 ]
机构
[1] Cent Iron & Steel Res Inst Co Ltd, Beijing 100081, Peoples R China
[2] Univ Sci & Technol Beijing, Collaborat Innovat Ctr Steel Commonal, Beijing 100083, Peoples R China
[3] China Natl Petr Pipeline Network Grp Co Ltd, Construct Project Management Branch, Langfang 065000, Hebei, Peoples R China
关键词
Welding thermal simulation; Impact toughness; Crack propagation; Martensite-austenite constituent; High-strength low-alloy steel weld; Heat-affected zone; MECHANICAL-PROPERTIES; IMPACT TOUGHNESS; CRACK INITIATION; PIPELINE STEEL; GRAIN-BOUNDARY; TEMPERATURE; BEHAVIOR; PROPAGATION; CONSTITUENT; CORROSION;
D O I
10.1007/s42243-023-01133-x
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
The evolution of the microstructure and toughness of APL5L X80 pipeline steel after thermal welding simulation was investigated by X-ray diffraction, electron backscatter diffraction, and transmission electron microscopy. The results indicated that primary heat-affected zones can be divided into weld, coarse-grained, fine-grained, intercritical, and subcritical zones. The microstructure of the weld zone is mainly composed of bainitic ferrite and a small amount of granular bainite; however, the original austenite grains are distributed in the columnar grains. The structure of the coarse-grained zone is similar to that of the weld zone, but the original austenite grains are equiaxed. In contrast, the microstructure in the fine-grained zone is dominated by fine granular bainite, and the effective grain size is only 8.15 mu m, thus providing the highest toughness in the entire heat-affected zone. The intercritical and subcritical zones were brittle valley regions, and the microstructure was dominated by granular bainite. However, the martensite-austenite (M/A) constituents are present in island chains along the grain boundaries, and the coarse size of the M/A constituents seriously reduces the toughness. The results of the crack propagation analyzes revealed that high-angle grain boundaries can significantly slow down crack growth and change the crack direction, thereby increasing the material toughness. The impact toughness of the low-temperature tempering zone was equivalent to that of the columnar grain zone, and the impact toughness was between those of the critical and fine-grained zones.
引用
收藏
页码:2041 / 2052
页数:12
相关论文
共 50 条
  • [41] Toughness improvement by Zr addition in the simulated coarse-grained heat-affected zone of high-strength low-alloy steels
    Liu, Yu
    Li, Guangqiang
    Wan, Xiangliang
    Zhang, Xianguang
    Shen, Yu
    Wu, Kaiming
    IRONMAKING & STEELMAKING, 2019, 46 (02) : 113 - 123
  • [42] In-Situ Observation of Grain Refinement in the Simulated Heat-Affected Zone of High-Strength Low-Alloy Steel by Zr-Ti Combined Deoxidation
    Zhou, Bowen
    Li, Guangqiang
    Wan, Xiangliang
    Li, Yu
    Wu, Kaiming
    METALS AND MATERIALS INTERNATIONAL, 2016, 22 (02) : 267 - 275
  • [43] Methodology for Prediction of Microstructure and Mechanical Properties of the Heat-Affected Zone of a Joint of a High-Strength Steel Welded in Different Media
    Karkhin, V. A.
    Tishkov, M. K.
    Aldaiee, Y.
    Parshin, S. G.
    Levchenko, A. M.
    METAL SCIENCE AND HEAT TREATMENT, 2024, : 510 - 516
  • [44] In-situ observation of grain refinement in the simulated heat-affected zone of high-strength low-alloy steel by Zr-Ti combined deoxidation
    Bowen Zhou
    Guangqiang Li
    Xiangliang Wan
    Yu Li
    Kaiming Wu
    Metals and Materials International, 2016, 22 : 267 - 275
  • [45] LASER-WELD HEAT-AFFECTED ZONE LIQUATION AND CRACKING IN A HIGH-STRENGTH MG-BASED ALLOY
    BAESLACK, WA
    SAVAGE, SJ
    FROES, FH
    JOURNAL OF MATERIALS SCIENCE LETTERS, 1986, 5 (09) : 935 - 939
  • [46] Eliminating the Brittleness Constituent to Enhance Toughness of the High-Strength Steel Weld Heat-Affected Zone Using Electropulsing
    Chen, Zhanglan
    Xiong, Yunfeng
    Li, Xiaowen
    Li, Zongmin
    MATERIALS, 2022, 15 (06)
  • [47] STRUCTURE AND PROPERTIES OF HEAT-AFFECTED ZONE IN ELECTROSLAG WELDING OF A HIGH-STRENGTH TITANIUM-ALLOY
    GRABIN, VF
    CHERKASO.NI
    AUTOMATIC WELDING USSR, 1973, 26 (09): : 18 - 22
  • [48] Structure and Properties of the Heat-Affected Zone of Low-Alloy Cold-Resistant Steel for Arctic Application
    Sych O.V.
    Khlusova E.I.
    Pazilova U.A.
    Yashina E.A.
    Inorganic Materials: Applied Research, 2018, 9 (6) : 1076 - 1089
  • [49] Austenite to bainite phase transformation in the heat-affected zone of a high strength low alloy steel
    Lambert-Perlade, A
    Gourgues, AF
    Pineau, A
    ACTA MATERIALIA, 2004, 52 (08) : 2337 - 2348
  • [50] Structure and ductility of the heat-affected zone of welded joints of a high-strength steel
    T. I. Tabatchikova
    A. D. Nosov
    S. N. Goncharov
    N. Z. Gudnev
    S. Yu. Delgado Reina
    I. L. Yakovleva
    The Physics of Metals and Metallography, 2014, 115 : 1241 - 1248