Analysis of Mould, Spray and Radiation Zones of Continuous Billet Caster by Three‐dimensional Mathematical Model based on a Turbulent Fluid Flow

An analysis of mould, spray and radiation zones of a continuous billet caster has been done by a three-dimensional turbulent fluid flow and heat transfer mathematical model. The aim was to reduce crack susceptibility of the billets and enhance productivity of the billet caster. Enthalpy-porosity technique is used for the solidification. Turbulence is modelled by a realizable k-e model. The three-dimensional mesh of the billet is generated by Gambit software, and Fluent software is used for the solution of equations. In various zones, different standard boundary conditions are applied. Enhanced wall treatment is used for the turbulence near the wall. In the mould region, Savage and Prichard expression for heat flux is applied. In the spray cooling zone, the heat transfer coefficient for surface cooling of the billet is calculated by knowing the water flow rate and the nozzle configuration of the plant. The model predicts the velocities in the molten pool of a billet, the temperature in the entire volume of billet, the heat transfer coefficient in the mould region, the heat flux in the cooling zone and radiation cooling zone, and the shell thickness at various zones. The model forecasts that the billet surface temperature up to the cutting region is above the austenite-ferrite transformation temperature (which is accompanied by large volume change). The model predicts a temperature difference of maximum 700 K between the centre and surface of the billet. The entire solidification takes place at 11.0 m length at 3.0 m/min. For the same casting arrangement, increasing the casting speed up to 4.0 m/min has been explored. Based on the simulation results, recommendations to alter the spray water flow rate and spray nozzle diameter are presented to avoid a sudden change of temperature.

[1]  A. Ghosh,et al.  Mathematical Modelling of Heat Transfer Phenomena in Continuous Casting of Steel , 1993 .

[2]  Roderick I. L. Guthrie,et al.  Coupled turbulent flow, heat, and solute transport in continuous casting processes , 1995 .

[3]  B. A. Kader Temperature and concentration profiles in fully turbulent boundary layers , 1981 .

[4]  R. V. Kumar,et al.  Modelling of steel shrinkage and optimisation of mould taper for high speed continuous casting , 2007 .

[5]  D. Mazumdar,et al.  Mathematical Modelling of Transport Phenomena in Continuous Casting of Steel , 1994 .

[6]  J. A. Spim,et al.  The use of artificial intelligence technique for the optimisation of process parameters used in the continuous casting of steel , 2002 .

[7]  J. K. Brimacombe,et al.  Mould−strand interaction in continuous casting of steel billets. III: Mould heat transfer and taper , 1993 .

[8]  M. R. R. I. Shamsi,et al.  Three dimensional turbulent fluid flow and heat transfer mathematical model for the analysis of a continuous slab caster , 2007 .

[9]  V. Voller,et al.  A fixed grid numerical modelling methodology for convection-diffusion mushy region phase-change problems , 1987 .

[10]  Seppo Louhenkilpi,et al.  Simulation of Microstructure of As-cast Steels in Continuous Casting , 2006 .

[11]  J. A. Spim,et al.  Application of a heuristic search technique for the improvement of spray zones cooling conditions in continuously cast steel billets , 2006 .

[12]  F. R. Camisani-Calzolari,et al.  Specification framework for control of the secondary cooling zone in continuous casting , 1998 .

[13]  Junjie Wang,et al.  Mathematical Heat Transfer Model Research for the Improvement of Continuous Casting Slab Temperature , 2005 .

[14]  I. V. Samarasekera,et al.  The influence of mold behavior on the production of continuously cast steel billets , 1982 .

[15]  I. Samarasekera,et al.  High speed continuous casting of steel billets: Part 1: General overview , 2002 .

[16]  HEAT EXTRACTION CAPABILITY OF CONTINUOUS-CASTING BILLET MOULDS , 1989 .

[17]  Lorenz T. Biegler,et al.  Finite difference heat-transfer modeling for continuous casting , 1990 .

[18]  T. Shih,et al.  A new k-ϵ eddy viscosity model for high reynolds number turbulent flows , 1995 .

[19]  I. V. Samarasekera,et al.  The thermal distortion of continuous-casting billet molds , 1982 .

[20]  Miroslav Raudensky,et al.  Secondary cooling in continuous casting and Leidenfrost temperature effects , 2005 .

[21]  D. Mazumdar A Consideration about the Concept of Effective Thermal Conductivity in Continuous Casting , 1989 .

[22]  Yao Man,et al.  Real-time analysis on non-uniform heat transfer and solidification in mould of continuous casting round billets , 2004 .