Prediction of Multiphase Flow in Ruhrstahl–Heraeus (RH) Reactor
Abstract
1. Introduction
- (1)
- In 1989, Tsujino et al. [17] investigated the flow field of molten steel in RH on the base of the flux balance between the down and up snorkel, but the fluid only involves in the molten steel.
- (2)
- (3)
- The molten steel and the bubbles were continuous phases, and the Euler–Euler model was applied to describe the multiphase flow in RH [20].
- (4)
2. Mathematical Model
2.1. Assumptions
- (1)
- (2)
- (3)
- (4)
- The bubbles are the rigid spheres [28], and they do not aggregate with each other or break up.
2.2. Governing Equations
2.2.1. Euler–Euler Model
2.2.2. Inter-Phase Momentum Transfer
2.2.3. Tracer Transfer Equation
2.3. Numerical Details
3. Model Validation
3.1. Validation of Fluid Flow
3.2. Grid-Independent Experiments
4. Results and Discussion
4.1. Gas Volume Fraction
4.2. Molten-Steel Flow Field
4.3. Molten-Steel Surface Fluctuation
4.4. Mixing Time
5. Conclusions
- (1)
- In previous papers, the computational domain usually only involves the molten-steel domain, so they cannot describe the behavior of the splashed droplets. In the current model, there is a molten-steel domain and a gas domain. In the molten-steel domain, there is an interaction between the molten steel and the argon bubbles. In the gas domain, there is an interaction between the splashed droplets and the gas. Consequently, the computational time rises 20% in two days, but it can give the spatial distribution of the splashed droplets in the vacuum chamber. Such a spatial distribution is very important for the solution of the decarburization model in the future.
- (2)
- There are 557 kg of droplets above the initial free surface of the molten steel in the vacuum chamber in the case of 1200 NL/min, which is up to 0.43% of 130 t of molten steel in the RH, but this model cannot give the size distribution of the splashed droplets.
- (3)
- When the argon domain is considered in the computational domain, the flow fields in the ladle, up-snorkel, and down-snorkel are similar to those in the previous references. Above the free surface of the molten steel in the vacuum chamber, there are ascending and descending droplets.
- (4)
- The “fountain” formed by the upward flow from the up-snorkel exceeds 0.1 m above the free surface of molten steel.
- (5)
- The center of the vortex between the upward stream and the downward stream is closer to the upward stream in vacuum chamber.
- (6)
- The mixing time drops 12.2% after the gas domain is considered in the computational domain.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Parameters | Value |
---|---|
Ladle bottom diameter, m | 2.592 |
Ladle top diameter, m | 2.98 |
Snorkel diameter, m | 0.48 |
Vacuum chamber diameter, m | 1.8 |
Immersion depth, m | 0.5 |
Nozzles diameter, m | 0.008 |
Number of nozzles | 4 |
Inlet flow rate of argon gas, NL/min | 1200 |
Temperature of molten steel, K | 1873 |
Vacuum chamber pressure, Pa | 67 |
Density of molten steel, kg/m3 | 7000 |
Dynamic viscosity of molten steel, Pa s | 6.2 × 10−3 |
Density of argon gas, kg/m3 | 1.783 |
Dynamic viscosity of argon gas, Pa s | 2.39 × 10−5 |
Surface tension between molten steel and argon gas, N/m | 1.5 |
Initial free surface in the vacuum chamber | 4.319 |
Amount of grid cells | 172,769 | 210,567 | 251,214 | 305,271 | 350,526 |
αgmax | 0.206 | 0.232 | 0.29 | 0.282 | 0.287 |
vmax (m/s) | 1.31 | 1.335 | 1.467 | 1.445 | 1.453 |
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Zhang, H.; Lei, H.; Jiang, Y.; Sun, Y.; Zeng, S.; Chen, S. Prediction of Multiphase Flow in Ruhrstahl–Heraeus (RH) Reactor. Materials 2025, 18, 3149. https://doi.org/10.3390/ma18133149
Zhang H, Lei H, Jiang Y, Sun Y, Zeng S, Chen S. Prediction of Multiphase Flow in Ruhrstahl–Heraeus (RH) Reactor. Materials. 2025; 18(13):3149. https://doi.org/10.3390/ma18133149
Chicago/Turabian StyleZhang, Han, Hong Lei, Yuanxin Jiang, Yili Sun, Shuai Zeng, and Shifu Chen. 2025. "Prediction of Multiphase Flow in Ruhrstahl–Heraeus (RH) Reactor" Materials 18, no. 13: 3149. https://doi.org/10.3390/ma18133149
APA StyleZhang, H., Lei, H., Jiang, Y., Sun, Y., Zeng, S., & Chen, S. (2025). Prediction of Multiphase Flow in Ruhrstahl–Heraeus (RH) Reactor. Materials, 18(13), 3149. https://doi.org/10.3390/ma18133149