Behavior of a superaustenitic stainless steel weld cladding deposited by the gas metal arc welding process

被引:7
|
作者
Matias, Joao V. S. [1 ,4 ]
Lourenco, Manuel J. C. [1 ]
Jorge, Jorge C. F. [1 ]
de Souza, Luis Felipe G. [1 ]
Farneze, Humberto N. [1 ]
Mendes, Matheus C. [1 ]
da Silva, Cilene Labre Alves [2 ]
Araujo, Leonardo S. [3 ]
机构
[1] CEFET RJ, Dept Engn Mecan, Ave Maracana 229, BR-20271110 Rio De Janeiro, RJ, Brazil
[2] CBPF, Ctr Brasileiro Pesquisas Fis, Rio Da Janeiro, Brazil
[3] Univ Fed Rio de Janeiro, Programa Engn Met & Mat, Rio De Janeiro, RJ, Brazil
[4] Inst Fed Fluminense IFF, Lab Ensaios Mat, Cabo Frio, RJ, Brazil
来源
关键词
Superaustenitic steel; Weld metal; GMAW process; Cladding; Microstructure; Corrosion; PITTING CORROSION BEHAVIOR; NI-CR-MO; MECHANICAL-PROPERTIES; AISI; 904L; SIGMA-PHASE; HEAT INPUT; MICROSTRUCTURE; RESISTANCE; PRECIPITATION; DUPLEX;
D O I
10.1016/j.mtcomm.2022.104978
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The performance of a superaustenitic stainless steel weld metal containing 6%Mo deposited by the GMAW process was studied. Multipass welding by the GMAW process with three layers was performed on a carbon steel plate with average heat input of 0.8 kJ/mm. After welding, microstructure characterization by scanning electron microscopy and electron backscattering diffraction, and corrosion performance by cyclic polarization and potentiostatic tests to determine the pitting potential and critical pitting temperature were performed on samples extracted at 3 mm from the fusion line, the minimum thickness required. The weld metal containing 6%Mo showed a microstructure consisting of an austenitic matrix with a volume fraction of Chi and Laves phases inferior to 1% and a PREN value higher than 40 at the dendrite core. As a consequence, similar pitting potential and critical pitting temperature compared to original alloys containing 6%Mo were obtained. Thus, superaustenitic stainless steel weld metals containing 6%Mo have the potential to be suggested as an alternative for weld claddings in the oil and gas industry.
引用
收藏
页数:10
相关论文
共 50 条
  • [41] Arc characteristics and metal transfer behavior in narrow gap gas metal arc welding process
    Zhang, Gang
    Shi, Yu
    Zhu, Ming
    Fan, Ding
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2017, 245 : 15 - 23
  • [42] The prediction of the temperature distribution and weld pool geometry in the gas metal arc welding process
    Wahab, MA
    Painter, MJ
    Davies, MH
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 1998, 77 (1-3) : 233 - 239
  • [43] Study on the weld pool oscillation behavior during pulsed gas metal arc welding
    Dai, Yue
    Li, Chunkai
    Wang, Jiaxin
    Gu, Yufen
    Shi, Yu
    JOURNAL OF MANUFACTURING PROCESSES, 2022, 84 : 327 - 343
  • [44] OXYGEN CONTENT OF WELD METAL DEPOSITED BY AUTOMATIC SUBMERGED ARC WELDING
    POTAPOV, NN
    LYUBAVSK.KV
    WELDING PRODUCTION, 1971, 18 (01): : 16 - &
  • [45] FORMATION OF STAINLESS-STEEL LAYER ON MILD-STEEL BY WELDING ARC CLADDING
    ISHIDA, T
    JOURNAL OF MATERIALS SCIENCE, 1991, 26 (23) : 6431 - 6435
  • [46] Process behavior and stability in short circuit gas metal arc welding
    Hermans, MJM
    Den Ouden, G
    WELDING JOURNAL, 1999, 78 (04) : 137S - 141S
  • [47] Simulation of weld pool dynamics in the stationary pulsed gas metal arc welding process and final weld shape
    Cho, M. H.
    Lim, Y. C.
    Farson, D. F.
    WELDING JOURNAL, 2006, 85 (12) : 271S - 283S
  • [48] Modeling of human welder behavior in gas tungsten arc welding of stainless steel tubes
    Zhang, WeiJie
    WELDING IN THE WORLD, 2014, 58 (05) : 601 - 617
  • [49] Arc Interference Behavior during Twin Wire Gas Metal Arc Welding Process
    Ye, Dingjian
    Hua, Xueming
    Wu, Yixiong
    ADVANCES IN MATERIALS SCIENCE AND ENGINEERING, 2013, 2013
  • [50] Characteristics study of post weld heat treatment in SA 387 grade 22 steel by cladding using gas tungsten arc welding process
    Joseph, G. Britto
    Valarmathi, T. N.
    Rajan, A. John
    Murugesan, G.
    Prabhakaran, R.
    MATERIALS TODAY-PROCEEDINGS, 2021, 44 : 3798 - 3802