Synthesis of a CFD Benchmark Exercise: Examining Fluid Flow and Residence-Time Distribution in a Water Model of Tundish
Abstract
:1. Introduction
2. Model Description
2.1. Water Model
2.2. CFD Model
- The model is based on a 3D set of the Navier–Stokes equations;
- Water modelling is simulated under isothermal condition;
- Steady-state liquid flow is calculated;
- Reynolds averaged Navier–Stokes (RANS) turbulence models are used;
- The free surface is flat and is kept at a fixed level.
2.3. Geometry and Mesh
2.4. Numerical Modelling Details and Boundary Conditions
3. Results
3.1. Reference Data of Fluid Flow (Water Model)
- (1)
- The edge of the tundish near the shroud (0 < x/L1 < 0.08);
- (2)
- A thin horizontal region along the tundish bottom (0.2 < x/L1 < 0.76);
- (3)
- A horizontal region just below the free surface (0.38 < x/L1 < 0.76);
- (4)
- An inclined vertical region between free surface and bottom (0.2 < x/L1 < 0.45).
3.2. Benchmark of Fluid Flow (Current Participant)
3.2.1. Mesh Size
3.2.2. Turbulence Model
- Standard k-ε (SKE);
- Realizable k-ε (RKE);
- V2F k-ε (VKE);
- Elliptic blending k-ε(EBKE);
- Shear stress transport k-ω (SKW);
- Reynolds stress models (RSM).
3.2.3. Discretization Schemes
- The first-order upwind scheme (1st order);
- The second-order upwind scheme (2nd order);
- The third-order MUSCL (3rd order).
3.3. Benchmark of Fluid Flow (All Participants)
3.4. Benchmark of Residence-Time Distribution (All Participants)
4. Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Notations | Unit | Tundish | ||
---|---|---|---|---|
Prototype | Water Model | |||
Liquid flow volume in the tundish | V | m3 | 2.275 | 0.463 |
Length of the tundish bottom | L1 | m | 3.14 | 1.847 |
Width of the tundish bottom | B1 | m | 0.78 | 0.459 |
Inclination of side walls | ϒ | 7° | 7° | |
Tundish filling level | H | m | 0.8 | 0.471 |
Length of the shroud | Lsh | m | 1 | 1 |
Inner diameter of the shroud | Dsh | m | 0.068 | 0.04 |
Length of the SEN | LSEN | m | 1 | 1 |
Inner diameter of the SEN | DSEN | m | 0.07 | 0.04 |
Position of the SEN | LSEN,P | m | 2.885 | - |
Immersion depth of the shroud | ZSh | m | 0.6 | 0.381 |
Diameter of the stopper rod | dsr | m | 0.127 | 0.08 |
Fluid density | ρ | kg/m3 | −0.883T + 8612.4 | 998.2 |
Dynamic viscosity | μ | Pa·s | 5.975 × 10−3 | 1.008 × 10−3 |
Mass flow rate during steady-state casting | msh,SEN | kg/s | 38 | 3.68 |
Mean flow velocity inside the shroud | ush | m/s | 1.49 | 2.92 |
Theoretical mean flow velocity | m/s | 0.008 | 0.015 | |
Maximum back-flow velocity in the tundish | u | m/s | - | 0.07 |
Theoretical residence time of the fluid | Ttheo | s | 420 | 126 |
Reynolds number | Re | - | 10,380 | 10,380 |
Mesh Size (m) | 0.0045 | 0.005 | 0.0055 | 0.006 | 0.0065 | 0.007 |
No. of mesh (million) | 0.97 | 0.75 | 0.62 | 0.53 | 0.45 | 0.42 |
User | Code | Turb. 1 | Model | No. of Cells × 103 | Mesh 2 | Solver Type &Precision 3 | Free-Surface | Wall | Discretization | Processing Time (h) | |||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Pre | Cal | Post | Total | ||||||||||
1 | FLUENT | RKE | Full | 491 | Hex. | Seg./Double | Symmetry | No-slip | 2nd order | 8 | 24 | 20 | 52 |
2 | FLUENT | RSM | Full | 560 | Hex. | Seg./Double | Shear = 0 | No-slip | QUICK | 8 | 90 | 8 | 106 |
3 | Fastest3D | SKE | Full | 661 | Hex. | Seg./Double | Wall | No-slip | 1st, 2nd order | 16 | 30 | 4 | 50 |
4 | FLUENT | RKE | Full | 540 | Hex. | Seg./Single | Symmetry | No-slip | 2nd order | 18 | 24 | 6 | 48 |
5 | CFX | SKW | Full | 500 | Tet. | Cou./single | Shear = 0 | No-slip | 2nd order | 24 | 2 | 32 | 58 |
6 | OpenFoam | RSM | Full | 503 | Hex. | Seg./Double | Shear = 0 | No-slip | 1st order | 1.5 | 48 | 2 | 51.5 |
7 | FLUENT | RSM | Full | 556 | Hex. | Seg./single | Symmetry | No-slip | 2nd order | 3 | 1 | 10 | 14 |
8 | OpenFoam | RKE | Full | 642 | Hex. | Seg./Double | Symmetry | No-slip | 1st, 2nd order | 0.5 | 48 | 2 | 50.5 |
9 | FLUENT | RSM | Full | 384 | Hex. | Seg./Double | Symmetry | No-slip | 2nd order | 4 | 9 | 3 | 16 |
10 | FLUENT | RKE | Full | 592 | Hex. | Seg./Double | Wall | No-slip | 1st, 2nd order | 8 | 24 | 20 | 52 |
12 | STAR-CCM+ | RKE | Half | 530 | Pol. | Seg./Double | Wall | No-slip | 2nd order | 10 | 35 | 12 | 57 |
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Sheng, D.-Y. Synthesis of a CFD Benchmark Exercise: Examining Fluid Flow and Residence-Time Distribution in a Water Model of Tundish. Materials 2021, 14, 5453. https://doi.org/10.3390/ma14185453
Sheng D-Y. Synthesis of a CFD Benchmark Exercise: Examining Fluid Flow and Residence-Time Distribution in a Water Model of Tundish. Materials. 2021; 14(18):5453. https://doi.org/10.3390/ma14185453
Chicago/Turabian StyleSheng, Dong-Yuan. 2021. "Synthesis of a CFD Benchmark Exercise: Examining Fluid Flow and Residence-Time Distribution in a Water Model of Tundish" Materials 14, no. 18: 5453. https://doi.org/10.3390/ma14185453
APA StyleSheng, D.-Y. (2021). Synthesis of a CFD Benchmark Exercise: Examining Fluid Flow and Residence-Time Distribution in a Water Model of Tundish. Materials, 14(18), 5453. https://doi.org/10.3390/ma14185453