Feasibility of autogenous welding simulation for enhancement of residual stress

被引:0
|
作者
Settu, Nandhakumar [1 ]
Kesavan, Gokul Kumar [1 ]
Subramanian, Arunprakash [1 ]
Ramasamy, Madesh [1 ]
Praveenkumar, V. [2 ]
Shankar, Karthik V. [2 ,3 ]
Bezawada, Sreenivasulu [4 ]
机构
[1] Vellore Inst Technol, Sch Mech Engn, Vellore 632014, India
[2] Amrita Vishwa Vidyapeetham, Dept Mech Engn, Amritapuri, India
[3] Amrita Vishwa Vidyapeetham, Ctr Flexible Elect & Adv Mat, Amritapuri, India
[4] Siddharth Inst Engn & Technol Puttur, Dept Mech Engn, Chittoor, AP, India
关键词
FINITE-ELEMENT SIMULATION; STEEL;
D O I
10.1557/s43580-024-00931-z
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Improving weld quality, enhancing weldment properties, and reducing failure rates were the primary objectives of this research. To achieve the above characteristics, a simulation was conducted for dissimilar welding of IN625 and SS316L using an autogenous approach. ANSYS software was utilized to forecast temperature distribution, weld pool characteristics, and residual stress (RS) measurements post-simulation. The dissimilar metals were welded via autogenous TIG process, with cross-section weldments revealing the macrostructure of the weld pool. RS measurement was carried out using the Debye-Scherrer (DS) rings method. Simulation played a crucial role in minimizing weldment failure rates. The DS ring analysis pinpointed the maximum tensile residual stress (TRS) at 178 MPa within the fusion zone (FZ).Graphical AbstractFE thermo-mechanical simulation of Dissimilar welding and residual stresses
引用
收藏
页码:1279 / 1283
页数:5
相关论文
共 50 条
  • [1] Simulation of welding deformation and residual stress
    Osaka University, Japan
    不详
    Yosetsu Gakkai Shi, 1 (66-74):
  • [2] Practical aspects of welding residual stress simulation
    Knoedel, Peter
    Gkatzogiannis, Stefanos
    Ummenhofer, Thomas
    JOURNAL OF CONSTRUCTIONAL STEEL RESEARCH, 2017, 132 : 83 - 96
  • [3] Simulation of welding to study residual stress and distortions
    Adamsab, Khadersab
    MATERIALS TODAY-PROCEEDINGS, 2021, 44 : 4445 - 4450
  • [4] Advanced simulation (and/or measurement) of welding deformation and residual stress
    Siegele D.
    Yosetsu Gakkai Shi/Journal of the Japan Welding Society, 2011, 80 (01): : 120 - 130
  • [5] Feasibility of controlling welding residual stress and distortion with tailing electromagnetic force
    State Key Laboratory of Advanced Welding Production Technology, Harbin Institute of Technology, Harbin 150001, China
    Hanjie Xuebao/Transactions of the China Welding Institution, 2008, 29 (08): : 65 - 68
  • [6] Welding Residual Stress in HDPE Pipes: Measurement and Numerical Simulation
    Sun, Yu
    Jia, Yun-Fei
    Haroon, Muhammad
    Lai, Huan-sheng
    Jiang, Wenchun
    Tu, Shan-Tung
    JOURNAL OF PRESSURE VESSEL TECHNOLOGY-TRANSACTIONS OF THE ASME, 2019, 141 (04):
  • [7] RECENT ADVANCES IN RESIDUAL STRESS SIMULATION CAUSED BY THE WELDING PROCESS
    Sallem, H.
    Feulvarch, E.
    El Sayed, H. Amin
    Souloumiac, B.
    Leblond, J-B.
    Bergheau, J-M.
    COMPUTATIONAL PLASTICITY XIII: FUNDAMENTALS AND APPLICATIONS, 2015, : 771 - 782
  • [8] MATERIALS AND FABRICATION Welding Residual Stress and Distortion Simulation and Measurement
    Rudland, David L.
    Brust, Frederick
    Keim, Elisabeth
    Mochizuki, Masahito
    Truman, Christopher
    Mahmoudi, Amir H.
    PROCEEDINGS OF THE ASME PRESSURE VESSELS AND PIPING CONFERENCE, PVP 2011, VOL 6, A AND B, 2012, : 1419 - 1419
  • [9] Experimental Study and Numerical Simulation on Residual Welding Stress Relaxation
    Wang, Min
    Qu, Weilian
    Wang, Yifei
    6TH INTERNATIONAL CONFERENCE ON ENVIRONMENTAL SCIENCE AND CIVIL ENGINEERING, 2020, 455
  • [10] Computer simulation of welding residual stress in steel girder bridge
    School of Civil Engineering, Central South University, Changsha
    410075, China
    不详
    430050, China
    Bridge Constr., 4 (94-99):