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CFD-Derived Regression Model to Predict Surface Velocity for a Continuous-Casting Round Billet Mold
Guangchao Guo1, Jiangshan Zhang1, Mengjing Zhao2
1State Key Laboratory of Advanced Metallurgy, University of Science and Technology Beijing, Beijing 100083, China.
A new regression model accurately predicts molten steel surface velocity in continuous casting molds. This tool aids in defect prevention and intelligent casting by forecasting key flow parameters rapidly.
Area of Science:
- Materials Science and Engineering
- Fluid Dynamics
- Computational Modeling
Background:
- Molten steel flow velocity at the mold surface critically impacts continuous casting quality, affecting flux melting, slag entrainment, and heat transfer uniformity.
- Accurate prediction of surface flow velocity is essential for minimizing defects and ensuring high-quality continuous casting.
Purpose of the Study:
- To develop a rapid and accurate predictive model for molten steel surface velocity in continuous casting molds.
- To establish a regression model based on Computational Fluid Dynamics (CFD) simulations for predicting maximum surface velocity and high-velocity range.
Main Methods:
- A three-dimensional electromagnetic-fluid dynamic coupled model was established and validated.
- Simulations were performed under various casting speeds, Electromagnetic Stirring (EMS) parameters (current, frequency), and Submerged Entry Nozzle (SEN) immersion depths.
- Regression analysis was used to derive predictive formulas for surface velocity characteristics.
Main Results:
- A CFD-derived regression model predicts maximum mold surface velocity and high-velocity range within milliseconds with <2% relative error.
- Maximum surface velocity increases with casting speed and EMS current, but decreases with EMS frequency.
- SEN immersion depth showed minimal impact on surface velocity and high-velocity range.
Conclusions:
- The developed regression model offers a reliable and fast method for predicting critical molten steel flow parameters in continuous casting.
- This model supports rapid mold design, slag entrainment risk assessment, breakout prediction, and intelligent continuous casting operations.
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