Experimental and Numerical Analysis on TIG Arc Welding of Stainless Steel Using RSM Approach

Sasan Sattarpanah Karganroudi, Mahmoud Moradi, Milad Aghaee Attar, Seyed Alireza Rasouli, Majid Ghoreishi, Jonathan Lawrence, Hussein Ibrahim

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    7 Citations (Scopus)
    73 Downloads (Pure)


    This study involves the validating of thermal analysis during TIG Arc welding of 1.4418 steel using finite element analyses (FEA) with experimental approaches. 3D heat transfer simulation of 1.4418 stainless steel TIG arc welding is implemented using ABAQUS software (6.14, ABAQUS Inc., Johnston, RI, USA), based on non-uniform Goldak’s Gaussian heat flux distribution, using additional DFLUX subroutine written in the FORTRAN (Formula Translation). The influences of the arc current and welding speed on the heat flux density, weld bead geometry, and temperature distribution at the transverse direction are analyzed by response surface methodology (RSM). Validating numerical simulation with experimental dimensions of weld bead geometry consists of width and depth of penetration with an average of 10% deviation has been performed. Results reveal that the suggested numerical model would be appropriate for the TIG arc welding process. According to the results, as the welding speed increases, the residence time of arc shortens correspondingly, bead width and depth of penetration decrease subsequently, whilst simultaneously, the current has the reverse effect. Finally, multi-objective optimization of the process is applied by Derringer’s de-sirability technique to achieve the proper weld. The optimum condition is obtained with 2.7 mm/s scanning speed and 120 A current to achieve full penetration weld with minimum fusion zone (FZ) and heat-affected zone (HAZ) width.

    Original languageEnglish
    Article number1659
    Number of pages19
    Issue number10
    Publication statusPublished - 19 Oct 2021

    Bibliographical note

    This is an open access article distributed under the Creative Commons Attribution License which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.


    Funding Information:
    Acknowledgments: We acknowledge the support of the Fonds Québécois de la Recherche sur la Nature et les Technologies (FRQNT) [funding reference number 06351].


    • Finite element analysis (FEA)
    • Response surface method (RSM)
    • Tungsten inert gas welding (TIG)

    ASJC Scopus subject areas

    • Materials Science(all)
    • Metals and Alloys


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