TWO-PHASE MODELING OF CONDUCTION MODE LASER WELDING USING SMOOTHED PARTICLE HYDRODYNAMICS

被引:0
|
作者
Hu, Haoyue [1 ]
Eberhard, Peter [1 ]
机构
[1] Univ Stuttgart, Inst Engn & Computat Mech, Pfaffenwaldring 9, D-70569 Stuttgart, Germany
关键词
SPH; Conduction Mode Laser Welding; Heat Transfer; Phase Transition; Marangoni Convection; Melt Flow; SIMULATION; SPH;
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
The process of conduction mode laser welding is simulated using the meshless Lagrangian method Smoothed Particle Hydrodynamics. The modeling of the solid phase is based on the governing equations in thermoelasticity. For the liquid phase, surface tension effects including the Marangoni force caused by a temperature-dependent surface tension gradient are taken into account to simulate the melt flow in the weld pool. A non-isothermal solid-liquid phase transition with the release or absorption of additional energy known as the latent heat of fusion is considered. The major heat transfer process through conduction is modeled, where as heat convection and radiation are neglected. The energy input from the laser beam is approximated as a Gaussian heat source acting on the material surface. Numerical results obtained with the developed model are presented for laser spot welding and seam welding of aluminum. The change of process parameters like welding speed and laser power, and their effects on the weld pool dimensions can be investigated through simulations, and the over all welding quality may be assessed.
引用
收藏
页码:308 / 319
页数:12
相关论文
共 50 条
  • [41] Using smoothed particle hydrodynamics for waves
    Dalrymple, Robert A.
    ASIAN AND PACIFIC COASTS 2007, 2007, : 17 - 28
  • [42] Solidification using smoothed particle hydrodynamics
    Monaghan, JJ
    Huppert, HE
    Worster, MG
    JOURNAL OF COMPUTATIONAL PHYSICS, 2005, 206 (02) : 684 - 705
  • [43] Modeling active micromixers with multiple microstirrers using smoothed particle hydrodynamics
    Jafarian, A.
    Pishevar, A.
    Saidi, M. S.
    SCIENTIA IRANICA, 2014, 21 (04) : 1390 - 1402
  • [44] Modeling Floating Object Entry and Exit Using Smoothed Particle Hydrodynamics
    Vandamme, Johan
    Zou, Qingping
    Reeve, Dominic E.
    JOURNAL OF WATERWAY PORT COASTAL AND OCEAN ENGINEERING, 2011, 137 (05) : 213 - 224
  • [45] Numerical modeling of caldera formation using Smoothed Particle Hydrodynamics (SPH)
    Mullet, B.
    Segall, P.
    Neto, A. H. Favero
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2023, 234 (02) : 887 - 902
  • [46] Modeling Left Ventricular Blood Flow Using Smoothed Particle Hydrodynamics
    Andrés Caballero
    Wenbin Mao
    Liang Liang
    John Oshinski
    Charles Primiano
    Raymond McKay
    Susheel Kodali
    Wei Sun
    Cardiovascular Engineering and Technology, 2017, 8 : 465 - 479
  • [47] COMPUTATIONAL MODELING OF FOOD ORAL BREAKDOWN USING SMOOTHED PARTICLE HYDRODYNAMICS
    Harrison, Simon M.
    Eyres, Graham
    Cleary, Paul W.
    Sinnott, Matthew D.
    Delahunty, Conor
    Lundin, Leif
    JOURNAL OF TEXTURE STUDIES, 2014, 45 (02) : 97 - 109
  • [48] Modeling Left Ventricular Blood Flow Using Smoothed Particle Hydrodynamics
    Caballero, Andres
    Mao, Wenbin
    Liang, Liang
    Oshinski, John
    Primiano, Charles
    McKay, Raymond
    Kodali, Susheel
    Sun, Wei
    CARDIOVASCULAR ENGINEERING AND TECHNOLOGY, 2017, 8 (04) : 465 - 479
  • [49] Modeling and Simulation of Sealing Spray Application Using Smoothed Particle Hydrodynamics
    Rundqvist, Robert
    Mark, Andreas
    Edelvik, Fredrik
    Carlsson, Johan S.
    FDMP-FLUID DYNAMICS & MATERIALS PROCESSING, 2011, 7 (03): : 259 - 278
  • [50] Hyperbolic conduction: a fast, physical conduction model implemented in smoothed particle hydrodynamics
    Owens, N. A.
    Wadsley, J.
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2024, 529 (04) : 4028 - 4036