• DocumentCode
    2583899
  • Title

    Numerical simulation and analysis of heat and mass transfer processes in metallurgical induction applications

  • Author

    Baake, Egbert ; Umbrashko, Andrejs ; Jakovics, Andris

  • Author_Institution
    Inst. of Electrotechnol., Leibniz Univ. of Hannover, Hannover, Germany
  • fYear
    2009
  • fDate
    18-23 May 2009
  • Firstpage
    1578
  • Lastpage
    1583
  • Abstract
    Comprehensive knowledge of the heat and mass transfer processes in the melt of induction applications is required to realize efficient metallurgical processes. Experimental and numerical studies of the melt flow in induction furnaces show that the flow pattern, which comprise several vortexes of the mean flow, and the temperature distribution in the melt are significantly influenced by low-frequency large scale flow oscillations. Two- and three-dimensional hydrodynamic calculations of the melt flow, using two-equation turbulence models based on Reynolds Averaged Navier-Stokes approach, do not predict the large scale periodic flow instabilities obtained from the experimental data. That´s why the large eddy simulation (LES) numerical technique was approved to be an alternative for the various k-epsiv model modifications. The results of the transient 3D LES simulation of the turbulent melt flow revealed the large scale periodic flow instabilities and the temperature distribution in the melt, which both are in good agreement with the expectations based on the data from the experiments. The studies, presented in this paper, demonstrate the possibility of using the three-dimensional transient LES approach for successful simulation of heat and mass transfer processes in metallurgical applications.
  • Keywords
    Navier-Stokes equations; flow instability; flow simulation; fluid oscillations; furnaces; heat transfer; hydrodynamics; induction heating; mass transfer; melting; metallurgical industries; numerical analysis; temperature distribution; turbulence; vortices; Reynolds averaged Navier-Stokes approach; flow pattern; heat transfer analysis; hydrodynamic calculation; large eddy simulation; large-scale periodic flow instability; low-frequency large-scale flow oscillation; mass transfer process; metallurgical induction furnace; metallurgical process; numerical simulation; temperature distribution; turbulent melt flow; two-equation turbulence model; vortexes; Electromagnetic forces; Furnaces; Heat transfer; Hydrodynamics; Large-scale systems; Metals industry; Numerical models; Numerical simulation; Predictive models; Temperature distribution; induction melting; large eddy simulation; metallurgical processes; numerical modelling;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    EUROCON 2009, EUROCON '09. IEEE
  • Conference_Location
    St.-Petersburg
  • Print_ISBN
    978-1-4244-3860-0
  • Electronic_ISBN
    978-1-4244-3861-7
  • Type

    conf

  • DOI
    10.1109/EURCON.2009.5167852
  • Filename
    5167852