Digital Twin Virtual Welding Approach of Robotic Friction Stir Welding Based on Co-Simulation of FEA Model and Robotic Model

被引:2
|
作者
Chen, Shujun [1 ]
Zong, Guanchen [1 ]
Kang, Cunfeng [1 ]
Jiang, Xiaoqing [1 ]
机构
[1] Beijing Univ Technol, Coll Mech & Energy Engn, Beijing 100124, Peoples R China
关键词
RFSW; robot stiffness; CEL; deviation measurement; welding process simulation; OPTIMIZATION;
D O I
10.3390/s24031001
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Robotic friction stir welding has become an important research direction in friction stir welding technology. However, the low stiffness of serial industrial robots leads to substantial, difficult-to-measure end-effector deviations under the welding forces during the friction stir welding process, impacting the welding quality. To more effectively measure the deviations in the end-effector, this study introduces a digital twin model based on the five-dimensional digital twin theory. The model obtains the current data of the robot and six-axis force sensor and calculates the real-time end deviations using the robot model. Based on this, a virtual welding model was realized by integrating the FEA model with the digital twin model using a co-simulation approach. This model achieves pre-process simulation by iteratively cycling through the simulated force from the FEA model and the end displacement from the robot model. The virtual welding model effectively predicts the welding outcomes with a mere 6.9% error in lateral deviation compared to actual welding, demonstrating its potential in optimizing welding parameters and enhancing accuracy and quality. Employing digital twin models to monitor, simulate, and optimize the welding process can reduce risks, save costs, and improve efficiency, providing new perspectives for optimizing robotic friction stir welding processes.
引用
收藏
页数:20
相关论文
共 50 条
  • [1] Deflection model for robotic friction stir welding
    De Backer, Jeroen
    Bolmsjo, Gunnar
    INDUSTRIAL ROBOT-THE INTERNATIONAL JOURNAL OF ROBOTICS RESEARCH AND APPLICATION, 2014, 41 (04): : 365 - 372
  • [2] Robotic friction stir welding
    Cook, GE
    Crawford, R
    Clark, DE
    Strauss, AM
    INDUSTRIAL ROBOT-THE INTERNATIONAL JOURNAL OF ROBOTICS RESEARCH AND APPLICATION, 2004, 31 (01): : 55 - 63
  • [3] Process modeling of friction stir welding – Semi-analytical process model of robotic friction stir welding
    Kamm V.
    Mesmer P.
    Lechler A.
    Verl A.
    WT Werkstattstechnik, 2023, 113 (05): : 183 - 188
  • [4] Dynamic Model Identification of Axial Force in Robotic Friction Stir Welding
    Wang, K.
    Leonard, F.
    Abba, G.
    IFAC PAPERSONLINE, 2015, 48 (03): : 1936 - 1941
  • [5] Modelling of friction stir welding for robotic implementation
    Crawford, Reginald
    Cook, George E.
    Strauss, Alvin M.
    Hartman, Daniel A.
    INTERNATIONAL JOURNAL OF MODELLING IDENTIFICATION AND CONTROL, 2006, 1 (02) : 101 - 106
  • [6] A novel friction stir welding robotic platform: welding polymeric materials
    N. Mendes
    P. Neto
    M. A. Simão
    A. Loureiro
    J. N. Pires
    The International Journal of Advanced Manufacturing Technology, 2016, 85 : 37 - 46
  • [7] A novel friction stir welding robotic platform: welding polymeric materials
    Mendes, N.
    Neto, P.
    Simao, M. A.
    Loureiro, A.
    Pires, J. N.
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2016, 85 (1-4): : 37 - 46
  • [8] A physically based material model for the simulation of friction stir welding
    Panzer, Florian
    Shishova, Elizaveta
    Werz, Martin
    Weihe, Stefan
    Eberhard, Peter
    Schmauder, Siegfried
    MATERIALS TESTING, 2020, 62 (06) : 603 - 611
  • [9] Technological and Process Advances in Robotic Friction Stir Welding
    Zhang H.
    Huang Y.
    Guo Y.
    Lu Q.
    Huang, Yongde (huangydhm@nchu.edu.cn), 2018, Cailiao Daobaoshe/ Materials Review (32): : 128 - 134
  • [10] Friction model for friction stir welding process simulation: Calibrations from welding experiments
    Assidi, Mohamed
    Fourment, Lionel
    Guerdoux, Simon
    Nelson, Tracy
    INTERNATIONAL JOURNAL OF MACHINE TOOLS & MANUFACTURE, 2010, 50 (02): : 143 - 155