Nanosilica treatment enables moisture-resistant hydrophobic arc welding covered electrodes

被引:1
作者
Pasandeh, Mohammadreza [1 ]
Pouranvari, Majid [2 ]
机构
[1] Razi Univ, Fac Engn, Dept Mat & Text Engn, Kermanshah, Iran
[2] Sharif Univ Technol, Dept Mat Sci & Engn, Tehran 113659466, Iran
关键词
C-MN;
D O I
10.1038/s41598-023-37164-3
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Controlling the moisture content of the electrode-covering is crucial in the production of defect-free, high-quality welds during shielded metal arc welding of steels. The welding industry has long faced the challenge of the high susceptibility of basic electrodes (e.g., E7018) to moisture absorption. In this paper, we demonstrate that applying a nanosilica coating to the surface of the E7018 electrode-covering using a dip-coating technique can effectively reduce the moisture absorption capability of the electrode-covering. The moisture measurement results before and after exposure to a moist environment of 80% humidity and a temperature of 27 & DEG;C for 9 h indicate that the moisture absorption values of conventional and nano-treated E7018 electrodes during exposure are 0.67 wt% and 0.03 wt%, respectively. While reducing the size of the pores on the surface of the electrode-covering can to some extent enhance the resistance to moisture absorption, it has been identified that turning the wetting behavior of the electrode-covering surface from hydrophilic to hydrophobic by the nanosilica coating is the most effective mechanism that contributes to the enhanced moisture absorption resistance of the nanosilica-treated electrode-covering. The results indicate that this approach does not have any deleterious effects on the chemical analysis and tensile properties of the weld metal. This simple modification to the electrode-covering can be generally applied to a wide range of electrode-covering types to produce hydrophobic, moisture-resistant electrodes.
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页数:8
相关论文
共 29 条
  • [1] Abson D. J., 1986, International Metals Reviews, V31, P141
  • [2] American Welding Society (AWS), 2015, A51A51M AWS
  • [3] American Welding Society (AWS), B40B40M2000 AWS
  • [4] Barringer E. A., 1987, US Patent, Patent No. [US4662952A, 4662952]
  • [5] Bracarense AQ., 2012, J MATER RES TECHNOL, V1, P64, DOI [10.1016/S2238-7854(12)70012-1, DOI 10.1016/S2238-7854(12)70012-1]
  • [6] Lucas-Washburn Equation-Based Modeling of Capillary-Driven Flow in Porous Systems
    Cai, Jianchao
    Jin, Tingxu
    Kou, Jisheng
    Zou, Shuangmei
    Xiao, Junfeng
    Meng, Qingbang
    [J]. LANGMUIR, 2021, 37 (05) : 1623 - 1636
  • [7] Crockett D. D., 2005, US Patent, Patent No. [US6939413B2, 6939413]
  • [8] Dallam C. B., 2006, US Patent, Patent No. [US7147725B2, 7147725]
  • [9] Dhanuka M. P., LIFFEING WELDING LOW
  • [10] Prevention of Hydrogen Embrittlement in Steels
    Dharamshi, Harshad Kumar
    Bhadeshia, Hansraj
    [J]. ISIJ INTERNATIONAL, 2016, 56 (01) : 24 - 36