Modelling and experimental validation of moving tilted volumetric heat source in gas metal arc welding process

被引:34
|
作者
Ghosh, Aniruddha [1 ]
Yadav, Anshul [2 ]
Kumar, Arvind [2 ]
机构
[1] Govt Coll Engn & Text Technol, Dept Mech Engn, Berhampur 742101, India
[2] Indian Inst Technol Kanpur, Dept Mech Engn, Kanpur 208016, Uttar Pradesh, India
关键词
Gas metal arc welding; Tilted electrode; Gaussian heat distribution; Ellipsoidal heat source; Heat affected zone; TEMPERATURE-FIELD; PARAMETERS; GEOMETRY;
D O I
10.1016/j.jmatprotec.2016.08.010
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In this work, the effect of electrode's tilt angle on transient temperature distribution, heat affected zone width and weld bead geometry in gas metal arc welding process are investigated. Experimental, microstructure and analytical modelling studies of heat affected zone and fusion zone have been performed for different electrode tilt angles. Gaussian heat density distribution and ellipsoidal heat source shape were assumed to predict the transient temperature distribution in the welded plate. The analytical model for the transient temperature distribution in the welded plate considers heat transfers from molten droplets of the filler material, moving volumetric heat source, and convective and radiative heat losses from the welded plate. Decent agreement between the predicted and the experimental temperature distribution, heat affected zone and weld bead geometry is obtained. The comparison suggested that ellipsoidal heat source shape is quite appropriate for predicting the transient temperature distribution on the welded plate for gas metal arc welding process. It was found that the heat affected zone width increases with the decrease in tilt angle. Microstructural examination on samples revealed prominent grain growth in the heat affected zone, however, fine grain structure was observed in the fusion zone. The predictions for heat affected zone width and weld bead geometry are also validated with experiments performed in shop floor welding conditions. (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:52 / 65
页数:14
相关论文
共 50 条
  • [31] Gas Metal Arc Welding Process Control Based on Arc Length and Arc Voltage
    Anzehaee, Mohammad Mousavi
    Haeri, Mohammad
    Tipi, Ali Reza Doodman
    INTERNATIONAL CONFERENCE ON CONTROL, AUTOMATION AND SYSTEMS (ICCAS 2010), 2010, : 280 - 285
  • [32] Robotic welding system for adaptive process control in gas metal arc welding
    Biber, A.
    Sharma, R.
    Reisgen, U.
    WELDING IN THE WORLD, 2024, 68 (09) : 2311 - 2320
  • [33] Spectral diagnostics of a pulsed gas metal arc welding process
    Gregor Gött
    Dirk Uhrlandt
    Ruslan Kozakov
    Heinz Schöpp
    Welding in the World, 2013, 57 : 215 - 221
  • [34] Statistical process control applied to gas metal arc welding
    Maul, GP
    Richardson, R
    Jones, B
    COMPUTERS & INDUSTRIAL ENGINEERING, 1996, 31 (1-2) : 253 - 256
  • [35] DEVELOPMENT OF AN ADVANCED GAS METAL ARC-WELDING PROCESS
    STOL, I
    WELDING JOURNAL, 1989, 68 (08) : S313 - S326
  • [36] Statistical process control applied to gas metal arc welding
    Maul, Gary P.
    Richardson, Richard
    Jones, Brett
    Computers and Industrial Engineering, 1996, 31 (1-2): : 253 - 256
  • [37] Thermal model of the Gas Metal Arc Welding hardfacing process
    Sachajdak, Andrzej
    Sloma, Jacek
    Szczygiel, Ireneusz
    APPLIED THERMAL ENGINEERING, 2018, 141 : 378 - 385
  • [38] Spectral diagnostics of a pulsed gas metal arc welding process
    Goett, Gregor
    Uhrlandt, Dirk
    Kozakov, Ruslan
    Schoepp, Heinz
    WELDING IN THE WORLD, 2013, 57 (02) : 215 - 221
  • [39] Process stability of automated gas metal Arc welding of aluminium
    Schubert, E
    ROBOTIC WELDING, INTELLIGENCE AND AUTOMATION, 2004, 299 : 1 - 13
  • [40] Modeling of transport phenomena in a gas metal arc welding process
    Jaidi, J
    Dutta, P
    NUMERICAL HEAT TRANSFER PART A-APPLICATIONS, 2001, 40 (05) : 543 - 562