Comparison of Fluid Flow and Tracer Dispersion in Four-Strand Tundish under Fewer Strand Casting and Sudden Blockage of Strand Conditions
Abstract
:1. Introduction
2. Numerical Simulation Methods
2.1. Geometric Dimensions
2.2. Computational Fluid Dynamics (CFD) Modeling and Solution
2.2.1. Model Assumptions
- Viscosity measurements of liquid iron (steel) [40] and rheology studies [41] performed on liquid steel show non-Newtonian fluid flow characteristics of liquid steel [42]. Water has the same order of magnitude of kinematic viscosity as liquid steel. Physical models, especially water models, are widely used to study the fluid mechanics of liquid steel in industry. For simplicity, the present model was a full-size tundish based on the water model geometry, as shown in Figure 1, Figure 2 and Figure 3;
- Passive scalar transport was mainly studied, and it was assumed to be in the liquid phase;
- For simplicity, thermal buoyancy was neglected and fluid mechanics were the main focus;
- The free surface was flat, and the slag layer was not considered in the tundish.
2.2.2. Governing Equations
2.2.3. Turbulence Model
2.2.4. Tracer Transport
2.2.5. Mesh
2.2.6. Boundary Conditions
- No-slip conditions were applied at all solid surfaces for the liquid phase;
- A constant inlet velocity was used, and the inlet velocity was 0.58 m/s;
- At the tundish outlet, an outflow boundary with a constant mass flow rate condition was applied;
- The outlet pressure was set to a constant value of one standard atmosphere;
- The roughness of the turbulence inhibitor, inlet ladle shroud, and stopper rod was set as 1 × 10−5 m. In addition, the roughness of other solid walls was set as 2 × 10−6 m.
2.2.7. Treatment of Sudden Blockage and Fewer Strand Simulation
2.2.8. Solution Procedure
2.3. Analytical Method
2.3.1. RTD Analysis Method
2.3.2. Outflow Percentage Analysis Method
3. Results and Discussion
3.1. Mesh Sensitivity and Validation
3.2. Velocity Distributions of Tundishes with Three Weir Structures under Normal Conditions
3.3. Transport Process of the Tracer under Different Blocking Conditions in the Tundish with a Double Weir
3.4. Transport Process of the Tracer under Different Blocking Conditions in the Tundish with a U-Shaped Weir
3.5. Transport Process of the Tracer under Different Blocking Conditions in the Tundish with a U-Shaped Weir Structure with Holes in the Front
3.6. Analysis of RTD for the Stable and Sudden Blockage Conditions
3.7. Consistency Analysis of Each Strand with Stable Blockage and Sudden Blockage
3.8. Discussion
4. Conclusions
- After sudden blockage of the four-strand tundish, its flow field does not immediately transition to a stable three-strand flow field, but rather maintains the four-strand flow field before blockage, gradually approaching a stable three-strand flow field, ultimately remaining basically consistent with the flow field under stable blockage conditions.
- Under four-strand casting conditions, the velocity vector fields of the three tundish cases remain symmetric on the left and right sides. At 30 s after sudden blockage, only the velocity vector of the U-shaped weir with holes in the front case maintain symmetry on both sides. At 1200 s after sudden blockage, the velocity vectors of all three tundish cases are consistent with those of the stable blockage case.
- After sudden blockage of the tundish strands, using different structures of weir, the transition of the flow field from an unstable four-strand flow field to a stable three-strand flow field varies in time. The tundish with a double weir and the tundish with a U-shaped weir reach a stable state after 200 s, while the tundish with a U-shaped weir structure with holes in the front reaches stability after 150 s.
- The flow field under stable blockage conditions is more stable compared to that under sudden blockage, and the consistency among strands is higher than under sudden blockage.
- After single-strand blockage, the influence on the unblocked outlets on the same side is significant, especially for the tundish with a double weir, where the weir separates the left and right sides into independent parts, resulting in minimal impact on the flow field on the right side if blockage occurs on the left side.
- In both stable and sudden blockage scenarios, the outflow percentage curves and flow fields of the tundish with a U-shaped weir with structure holes in the front remain basically consistent, indicating that, after sudden blockage, the influence of blockage on each strand is minimal, demonstrating better adaptability.
- Under single-strand blockage, the consistency among strands of the tundish with a U-shaped weir structure with holes in the front is optimal, effectively adjusting the flow pattern from the blocked side to the unblocked side.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Investigators | Year | Strand Number | FCD | Mode | Research Focus |
---|---|---|---|---|---|
C. Bruch, P. Valentin [26] | 2004 | 6 | D,W,SR | M | FF |
L. Zhang [33] | 2005 | 4 | D,WHW | M | FF,HT,IR |
L. Zhong et al. [35] | 2010 | 6 | WHW | P | FC,FCD |
A. Braun et al. [32] | 2010 | 2 | SR | P,M | HT |
S. K. Mishra et al. [29] | 2012 | 6 | / | P,M | FF,HT |
A. Sengupta et al. [27] | 2013 | 6 | PC | P | FC |
W. Xie et al. [30] | 2014 | 7 | / | P | FC |
J. Zhang et al. [31] | 2014 | 12 | WHW | P | FC |
T. Merder [28] | 2014 | 6 | IP | M | FC |
X. Huang [34] | 2018 | 10 | / | M | HT,IR |
C. Yao et al. [36] | 2021 | 6 | WHW | P,M | FCD,HT |
J. Fan et al. [37] | 2022 | 4 | WHW,SR | P,M | FF,FCD |
Parameters | Volumetric Flow Rate per Nozzle (L/h) | Diameter of the Nozzle (mm) | Depth of Liquid (mm) | Distance between Two Nozzles (mm) | Depth of Shroud Penetration (mm) |
---|---|---|---|---|---|
Industrial tundish | 3105 | 30 | 800 | 1200 | 220 |
Water model | 199 | 10 | 267 | 400 | 73 |
Time-Weighted Variance | Double-Weir Tundish | U-Shaped Weir Tundish | U-Shaped Weir Structure with Holes in the Front | |||
---|---|---|---|---|---|---|
Sudden Blockage | Stable Blockage | Sudden Blockage | Stable Blockage | Sudden Blockage | Stable Blockage | |
strand 1 blocked | 2.02 × 10−3 | 1.42 × 10−3 | 2.76 × 10−4 | 3.09 × 10−4 | 3.01 × 10−4 | 1.16 × 10−4 |
strand 2 blocked | 2.09 × 10−3 | 1.22 × 10−3 | 4.88 × 10−4 | 2.59 × 10−4 | 2.84 × 10−4 | 2.26 × 10−4 |
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Song, J.; Luo, Y.; Li, Y.; Guo, Z.; Wang, T.; Geng, M.; Lin, W.; Fan, J.; Chen, C. Comparison of Fluid Flow and Tracer Dispersion in Four-Strand Tundish under Fewer Strand Casting and Sudden Blockage of Strand Conditions. Metals 2024, 14, 571. https://doi.org/10.3390/met14050571
Song J, Luo Y, Li Y, Guo Z, Wang T, Geng M, Lin W, Fan J, Chen C. Comparison of Fluid Flow and Tracer Dispersion in Four-Strand Tundish under Fewer Strand Casting and Sudden Blockage of Strand Conditions. Metals. 2024; 14(5):571. https://doi.org/10.3390/met14050571
Chicago/Turabian StyleSong, Jintao, Yanzhao Luo, Yuqian Li, Zhijie Guo, Tianyang Wang, Mengjiao Geng, Wanming Lin, Jinping Fan, and Chao Chen. 2024. "Comparison of Fluid Flow and Tracer Dispersion in Four-Strand Tundish under Fewer Strand Casting and Sudden Blockage of Strand Conditions" Metals 14, no. 5: 571. https://doi.org/10.3390/met14050571
APA StyleSong, J., Luo, Y., Li, Y., Guo, Z., Wang, T., Geng, M., Lin, W., Fan, J., & Chen, C. (2024). Comparison of Fluid Flow and Tracer Dispersion in Four-Strand Tundish under Fewer Strand Casting and Sudden Blockage of Strand Conditions. Metals, 14(5), 571. https://doi.org/10.3390/met14050571