Numerical simulation of temperature-driven free surface flows, with application to laser melting and polishing

被引:6
|
作者
Caboussat A. [1 ]
Hess J. [2 ,3 ]
Masserey A. [2 ,4 ]
Picasso M. [3 ]
机构
[1] Geneva School of Business Administration, University of Applied Sciences and Arts Western Switzerland (HES-SO), Carouge
[2] Ycoor Systems SA, Sierre
[3] Institute of Mathematics, Ecole polytechnique fédérale de Lausanne, Lausanne
[4] Thermomechanical Metallurgy Laboratory, Ecole polytechnique fédérale de Lausanne, Lausanne
来源
关键词
Free surfaces; Heat equation; Incompressible fluid; Laser melting; Marangoni effects; Operator splitting;
D O I
10.1016/j.jcpx.2023.100127
中图分类号
学科分类号
摘要
We present a multi-physics model for the approximation of the coupled system formed by the heat equation and the Navier-Stokes equations with solidification and free surfaces. The computational domain is the union of two overlapping regions: a larger domain to account for thermal effects, and a smaller region to account for the fluid flow. Temperature-dependent surface effects are accounted for via surface tension and Marangoni forces. The volume-of-fluid approach is used to track the free surfaces between the metal (liquid or solidified) and the ambient air. The numerical method incorporates all the physical phenomena within an operator splitting strategy. The discretization relies on a two-grid approach that uses an unstructured finite element mesh for diffusion phenomena and a structured Cartesian grid for advection phenomena. The model is validated through numerical experiments, the main application being laser melting and polishing. © 2023 The Author(s)
引用
收藏
相关论文
共 50 条
  • [31] Advances in direct numerical simulation for MHD modeling of free surface flows
    Satake, S
    Kunugi, T
    Smolentsev, S
    FUSION ENGINEERING AND DESIGN, 2002, 61-62 : 95 - 102
  • [32] The code MECO for the numerical simulation of free surface flows with phase change
    Reinke, N
    Koch, MK
    Schutz, W
    Fieg, G
    Unger, H
    JAHRESTAGUNG KERNTECHNIK 2000 - ANNUAL MEETING ON NUCLEAR TECHNOLOGY 2000, 2000, : 135 - 138
  • [33] Numerical simulation of axisymmetric non-Newtonian free surface flows
    Tome, MF
    Grossi, L
    Castelo, A
    Cuminato, JA
    Fortuna, A
    McKee, S
    APPLIED MECHANICS AND ENGINEERING, VOL 4, SPECIAL ISSUE: "ICER '99", 1999: PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON ENGINEERING RHEOLOGY ICER '99, 1999, : 121 - 126
  • [34] FINITE-ELEMENT SOLUTION OF SURFACE-TENSION DRIVEN FLOWS IN LASER SURFACE-MELTING
    RAVINDRAN, K
    SRINIVASAN, J
    MARATHE, AG
    MECHANICS RESEARCH COMMUNICATIONS, 1995, 22 (03) : 297 - 304
  • [35] Dynamic Numerical Simulation of Mould Free-form Curved Surface Gasbag Polishing
    Ji, S. M.
    Zhang, L.
    Jin, M. S.
    Yuan, Q. L.
    Shen, Y. Q.
    ULTRA-PRECISION MACHINING TECHNOLOGIES, 2009, 69-70 : 6 - 10
  • [36] NUMERICAL-SIMULATION OF SURFACE-TENSION DRIVEN FLOWS IN LIQUID BRIDGES
    NAPOLITANO, LG
    VIVIANI, A
    CASTAGNOLO, D
    ACTA ASTRONAUTICA, 1993, 29 (04) : 291 - 304
  • [37] A Splitting Method for Numerical Simulation of Free Surface Flows of Incompressible Fluids with Surface Tension
    Nikitin, Kirill D.
    Olshanskii, Maxim A.
    Terekhov, Kirill M.
    Vassilevski, Yuri V.
    COMPUTATIONAL METHODS IN APPLIED MATHEMATICS, 2015, 15 (01) : 59 - 77
  • [38] Numerical simulation of laser surface re-melting and its use in laser directional solidification
    Liu, Zhen-Xia
    Huang, Wei-Dong
    Yang, Sen
    Zhongguo Youse Jinshu Xuebao/Chinese Journal of Nonferrous Metals, 2002, 12 (03):
  • [39] Numerical simulation of melting process within a square enclosure with oscillatory surface temperature
    Ho, C.J.
    Chu, C.H.
    American Society of Mechanical Engineers, Heat Transfer Division, (Publication) HTD, 1992, 205 : 9 - 18
  • [40] Simulation of the (p, T) phase diagram of the temperature-driven metamagnet α-FeRh
    Gruner, ME
    Entel, P
    PHASE TRANSITIONS, 2005, 78 (1-3) : 209 - 217