Processing of copper by keyhole gas tungsten arc welding for uniformity of weld bead geometry

被引:8
|
作者
Darji, Raghavendra [1 ]
Badheka, Vishvesh [1 ]
Mehta, Kush [1 ,2 ]
Joshi, Jaydeep [3 ]
Yadav, Ashish [3 ]
机构
[1] Pandit Deendayal Petr Univ, Sch Technol, Dept Mech Engn, E Block,Room 006, Gandhinagar, India
[2] Aalto Univ, Sch Engn, Dept Mech Engn, Adv Mfg & Mat Grp, Espoo, Finland
[3] ITER India, Inst Plasma Res, Gandhinagar, Gujarat, India
关键词
Keyhole; GTAW; copper; weld; bead; geometry; penetration; evaluation; FRICTION; GTAW; CU;
D O I
10.1080/10426914.2020.1784932
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Keyhole gas tungsten arc welding (K-GTAW) was applied to characterize the weld bead geometry in case of the 6 mm thick electrolytic tough pitch copper. Various conditions of welding speeds and preheating on the bead geometry were studied for its uniformity. Visual examination, macro bead dimensional analysis, microhardness profile across the transverse section, microstructural analyses were performed to investigate the K-GTAW on electrolytic tough pitch copper. The results revealed that full penetration of 6 mm can be obtained in a single pass using keyhole mode in GTAW. Keyhole length and width were majorly affected by the welding speed and preheating temperature. Significant variations in weld bead geometry were observed even when high heat input conditions were applied without preheating. Uniform weld bead geometry of 5 mm bead width and depth to width ratio of 0.42 was obtained for a length of 80 mm using appropriate preheating of 300 degrees C and heat input condition of 1.37 kJ/mm (resulted from 300 amperes welding current, 120 mm/min welding speed, and 15.3 volts voltage). In the uniform weld bead geometry, the weld and heat affected zones were consisted of coarse grains relative to base material, wherein the micro hardness variations were observed.
引用
收藏
页码:1707 / 1716
页数:10
相关论文
共 50 条
  • [32] Visual sensing of the weld pool geometry from the topside view in keyhole plasma arc welding
    Liu, X. F.
    Wu, C. S.
    Jia, C. B.
    Zhang, G. K.
    JOURNAL OF MANUFACTURING PROCESSES, 2017, 26 : 74 - 83
  • [33] EFFECT OF ELECTRODE GEOMETRY IN GAS TUNGSTEN-ARC WELDING
    SAVAGE, WF
    STRUNCK, SS
    ISHIKAWA, Y
    WELDING JOURNAL, 1965, 44 (11) : S489 - &
  • [34] GAS TUNGSTEN ARC-WELDING - TROUBLESHOOTING AND WELD QUALITY GUIDE
    不详
    WELDING JOURNAL, 1983, 62 (11) : 75 - 76
  • [35] Weld Penetration Control in Gas Tungsten Arc Welding (GTAW) Process
    Liu, YuKang
    Zhang, YuMing
    39TH ANNUAL CONFERENCE OF THE IEEE INDUSTRIAL ELECTRONICS SOCIETY (IECON 2013), 2013, : 3842 - 3847
  • [36] Weld bead geometry real-time control in gas metal arc welding processes using intelligent systems
    Andres Giron-Cruz, Jorge
    Emilio Pinto-Lopera, Jesus
    Alfaro, Sadek C. A.
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2022, 123 (11-12): : 3871 - 3884
  • [37] ESTIMATION OF WELD BEAD GEOMETRY IN GAS METAL ARC WELDING OF ALUMINUM USING ELECTRICAL SIGNALS AND LIQUID SURFACE MODEL
    Du, Hao
    Hu, S. Jack
    Wang, Pei-Chung
    Li, Jingjing
    PROCEEDINGS OF THE ASME 10TH INTERNATIONAL MANUFACTURING SCIENCE AND ENGINEERING CONFERENCE, 2015, VOL 1, 2015,
  • [38] Weld bead geometry real-time control in gas metal arc welding processes using intelligent systems
    Jorge Andrés Girón-Cruz
    Jesús Emilio Pinto-Lopera
    Sadek C. A. Alfaro
    The International Journal of Advanced Manufacturing Technology, 2022, 123 : 3871 - 3884
  • [39] Weld penetration sensing in pulsed gas tungsten arc welding based on arc voltage
    Zhang Shiqi
    Hu Shengsun
    Wang Zhijiang
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2016, 229 : 520 - 527
  • [40] Metal flow of weld pool and keyhole evolution in gas focusing plasma arc welding
    Li, Tian Qing
    Chen, Lu
    Zhang, Yu
    Yang, Xi Mou
    Lei, Yu Cheng
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2020, 150