Local dry underwater welding of 304 stainless steel based on a microdrain cover

被引:31
作者
Han, Leigang [1 ]
Wu, Xiangmiao [2 ]
Chen, Guodong [3 ]
Wang, Zhenmin [1 ]
Fan, Wenyan [1 ]
机构
[1] South China Univ Technol, Sch Mech & Automot Engn, Guangzhou 510640, Guangdong, Peoples R China
[2] South China Univ Technol, Sch Comp Sci & Engn, Guangzhou 510640, Guangdong, Peoples R China
[3] China Nucl Power Res Inst Co Ltd, Intelligent Equipment & Robot Inst, Guangzhou 218031, Guangdong, Peoples R China
关键词
Microdrain cover; Local dry underwater welding; AISI 304 stainless steel; Weld formation;
D O I
10.1016/j.jmatprotec.2018.12.029
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
To improve the performance of the underwater dry welding repair process in nuclear spent fuel pools, a microdrain cover based on the shrinkage nozzle principle with a dual air curtain structure was designed, and a welding process was performed for investigation. American Iron and Steel Institute (AISI) 304 stainless steel was used as the base metal, and 14 sets of direct current (DC) pulse gas-shielded underwater welding experiments with different parameters were conducted. The water depth of the welding experiment was 40 cm. The main analysis included the weld formation, microstructure and microhardness as well as the mechanical properties of the weld, and the best experimental parameters were selected. A stable underwater welding process was achieved by using the microdrain cover combined with the optimized welding parameters. The weld width was uniform, the reinforcement height was moderate, there were almost no defects, and no porosity were observed. Austenite was the matrix structure of the weld zone, and the grain boundary was mixed with a certain amount of delta-ferrite, thereby showing a good corrosion resistance. Tensile fracturing occurred in the heat-affected zone (HAZ), the average yield strength exceeded 500 MPa, and the fracture displayed dimples.
引用
收藏
页码:47 / 53
页数:7
相关论文
共 14 条
  • [1] Effect of water flow on the arc stability and metal transfer in underwater flux-cored wet welding
    Chen, Hao
    Guo, Ning
    Shi, Xianghua
    Du, Yongpeng
    Feng, Jicai
    Wang, Guodong
    [J]. JOURNAL OF MANUFACTURING PROCESSES, 2018, 31 : 103 - 115
  • [3] Study on Remote Control Underwater Welding Technology Applied in Nuclear Power Station
    Gao, Hui
    Jiao, Xiangdong
    Zhou, Chanfeng
    Shen, Qiuping
    Yu, Yan
    [J]. CEIS 2011, 2011, 15
  • [4] [高延峰 Gao Yanfeng], 2017, [焊接学报, Transactions of the China Welding Institution], V38, P59
  • [5] HAMASAKI M, 1976, MET CONSTR-BRIT WELD, V8, P108
  • [6] Huang J. F, 2016, T CHINA WELD I, V2
  • [7] Kielczynski W., 1994, Weld. Int, V8, P257, DOI [10.1080/09507119409548586, DOI 10.1080/09507119409548586]
  • [8] Underwater Welding of Duplex Stainless Steel
    Labanowski, Jerzy
    Fydrych, Dariusz
    Rogalski, Grzegorz
    Samson, Krzysztof
    [J]. ENVIRONMENTAL DEGRADATION OF ENGINEERING & MATERIALS ENGINEERING AND TECHNOLOGIES, 2012, 183 : 101 - 106
  • [9] Li hl, 2017, T CHINA WELD I, V38, P5
  • [10] Lin S. Y, 1981, T CHINA WELD I, V1