Development of Three-Dimensional LES Based Meshless Model of Continuous Casting of Steel
Abstract
:1. Introduction
2. Materials and Methods
2.1. Mathematical Model
2.1.1. Governing Equations
2.1.2. Turbulence Modeling
2.1.3. Boundary Conditions
- Inlet: m/s, , m/s, , Pa/m;
- Meniscus: s, m/s, s, K/m, Pa/m;
- SEN wall: m/s, , Pa/m;
- Moving walls: m/s, , m/s, , where is heat flux and in the mold and in the secondary cooling zone, Pa/m;
- Outlet: s, K/m, Pa.
- Inlet: The synthetic turbulence approach proposed by [27,29] is used to generate the velocity fluctuations. The method proposes the decomposition of velocity into Fourier seriesThe is wave number, is a unit direction vector of the wave number, is phase angle, and is a unit direction, is a scaling constant, is a wave number of maximum energy, is the Kolmogorov wave number, , is the root mean square of velocity fluctuations, is integral length scale. The condition must be fulfilled at all times. Additionally, the time correlation is established by applying the asymmetric time correlation filter as
- Inlet: , where represents semi-empirical correlation for the turbulent intensity in pipe flows, , where is characteristic length;
- Meniscus: m/s, m/s;
- SEN wall: m/s, m/s;
- Moving walls: m/s, m/s;
- Outlet: m/s, m/s.
2.2. Numerical Method and Solution Procedure
2.2.1. Discretization
2.2.2. Local Radial Basis Function Collocation Method
2.2.3. Solution Procedure
2.2.4. Numerical Implementation
3. Results
3.1. Geometry and Process Parameters
3.2. Material Properties
3.3. Numerical Results and Discussion
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
2D | Two-dimensional |
3D | Three-dimensional |
AKN | Abe–Kondoh–Nagano |
CC | Continuous casting |
CFD | Computational fluid dynamics |
DNS | Direct numerical simulation |
FSM | Fractional step method |
LES | Large-eddy simulation |
MQ | Multiquadric |
LRBFCM | Local radial basis function collocation method |
RANS | Reynolds Averaged Navier–Stokes |
RBF | Radial basis function |
SEN | Submerged entry nozzle |
EMS | Electromagnetic stirring |
WALE | Wall-adapting local eddy-viscosity |
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Parameter | Notation | Value |
---|---|---|
Casting velocity | 0.027 m/s | |
Inlet velocity | ||
Ambient temperature | 293.15 K | |
Heat transfer coefficient in the mold | 2000 W/(m K) | |
Heat transfer coefficient in the secondary cooling zone | 800 W/(m K) | |
Casting temperature | 1798 K | |
Submerged entry nozzle (SEN) inner width | 0.035 m | |
SEN outer width | 0.065 m | |
SEN immersion depth | 0.15 m | |
Mold width | 0.18 m | |
Mold height | 0.85 m | |
Billet length | 1.8 m |
Probability Distribution | Probability Interval |
---|---|
Property | Notation | Value |
---|---|---|
Thermal conductivity | 33 W/(mK) | |
Density | 7300 kg/m | |
Specific heat in solid | 698 J/(kg K) | |
Specific heat in liquid | 804 J/(kg K) | |
Solidus temperature | 1673 K | |
Liquidus temperature | 1755 K | |
Mold enthalpy | 173,404 J/kg | |
Melting temperature | 1812 K | |
Dynamic viscosity | Pa s | |
Thermal expansion coefficient | 1/K |
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Mramor, K.; Vertnik, R.; Šarler, B. Development of Three-Dimensional LES Based Meshless Model of Continuous Casting of Steel. Metals 2022, 12, 1750. https://doi.org/10.3390/met12101750
Mramor K, Vertnik R, Šarler B. Development of Three-Dimensional LES Based Meshless Model of Continuous Casting of Steel. Metals. 2022; 12(10):1750. https://doi.org/10.3390/met12101750
Chicago/Turabian StyleMramor, Katarina, Robert Vertnik, and Božidar Šarler. 2022. "Development of Three-Dimensional LES Based Meshless Model of Continuous Casting of Steel" Metals 12, no. 10: 1750. https://doi.org/10.3390/met12101750
APA StyleMramor, K., Vertnik, R., & Šarler, B. (2022). Development of Three-Dimensional LES Based Meshless Model of Continuous Casting of Steel. Metals, 12(10), 1750. https://doi.org/10.3390/met12101750