NUMERICAL SIMULATION OF LASER GLAZING AND LASER DEPOSITION PROCESSES USING COUPLED TEMPERATURE-DISPLACEMENT FEM MODELS

被引:0
|
作者
Muci-Kuechler, Karim H. [1 ]
Tirukovelluri, Prashanth K. [1 ]
Langerman, Michael A. [1 ]
机构
[1] S Dakota Sch Mines & Technol, Dept Engn Mech, Rapid City, SD 57701 USA
关键词
Laser Glazing; Laser Powder Deposition; Coupled Temperature-Displacement FEM Model;
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Predicting the changes in the temperature, displacement and stress fields during Laser Powder Deposition (LPD) is of particular importance. To create a FEM model of LPD, it is convenient to consider first Laser Glazing (LG) since it does not involve the addition of material. Once an adequate approach has been identified to model the thermal aspects associated with the effect of the laser, the complexity of adding material can be included. In this paper coupled temperature-displacement FEM models of LG and LPD developed using the commercial FEM code ABAQUS/Standard are presented. In the case of LG, a model based on the sequentially coupled thermo-mechanical theory was used to predict the temperature distribution, deformations and stresses in a rectangular plate on which the laser moved along a straight path. The results for the temperature distribution were validated using Rosenthal's solution and experiments performed using the same material and processing parameters. For LPD, the model was developed using fully coupled thermo-mechanical theory and it was limited to thin-wall builds deposited on a plate with dimensions comparable to the wall thickness. To add material, new elements were sequentially introduced in the mesh. Qualitatively, the results obtained with the model were promising.
引用
收藏
页码:51 / 60
页数:10
相关论文
共 50 条
  • [11] Experimental study and numerical simulation on laser ignition processes
    Zhang, Xiao-Bing
    Yuan, Ya-Xiong
    Yang, Jun-Yun
    Zou, Rui-Rong
    Binggong Xuebao/Acta Armamentarii, 2006, 27 (03): : 533 - 536
  • [12] Numerical simulation of laser powder bed fusion processes
    Abrami, M. B.
    Ransenigo, C.
    Tocci, M.
    Pola, A.
    Obeidi, M.
    Brabazon, D.
    METALLURGIA ITALIANA, 2021, 113 (02): : 81 - 89
  • [13] Numerical simulation of laser energy deposition process in air-breathing laser propulsion
    Li, Qian
    Hong, Yanji
    Cao, Zhengrui
    Huang, Hui
    Qiangjiguang Yu Lizishu/High Power Laser and Particle Beams, 2009, 21 (12): : 1781 - 1785
  • [14] Coupled temperature-displacement modelling of injection stretch-blow moulding of PET bottles using Buckley model
    Yang, ZJ
    Harkin-Jones, E
    Menary, GH
    Armstrong, CG
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2004, 153 : 20 - 27
  • [15] FEM simulation of the temperature field during the laser forming of sheet metal
    Ji, Z
    Wu, SC
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 1998, 74 (1-3) : 89 - 95
  • [16] Numerical Simulation of Temperature Field of Direct Laser Metal Deposition Shaping Process of Titanium Alloys
    Kong, Yuan
    Liu, Weijun
    Wang, Yuechao
    MANUFACTURING SCIENCE AND TECHNOLOGY, PTS 1-3, 2011, 295-297 : 2112 - 2119
  • [17] Measurement and numerical simulation of temperature field of laser deposition of TA15 titanium alloy
    Yang, Guang
    Ding, Linlin
    Qin, Lanyun
    Bian, Hongyou
    Wang, Wei
    Qiangjiguang Yu Lizishu/High Power Laser and Particle Beams, 2014, 26 (11):
  • [18] Improving the Understanding of Laser Deposition Processes Through Process Simulation
    Martukanitz, R. P.
    Naber, A. C.
    Melnychuk, R. M.
    Mcvey, R. W.
    TRENDS IN WELDING RESEARCH, PROCEEDINGS, 2006, : 59 - +
  • [19] Numerical simulation of the effect of laser intensity and temperature on the performance of laser power converters
    Li, Guangji
    Wang, Chengmin
    Zhao, Nan
    Zhang, Hongchao
    Lu, Jian
    OPTICAL ENGINEERING, 2022, 61 (01)
  • [20] Numerical simulation of thermal stress on laser metal deposition shaping
    Long, Risheng
    Liu, Weijun
    Gaojishu Tongxin/Chinese High Technology Letters, 2007, 17 (02): : 142 - 147