Submitted:
14 October 2025
Posted:
15 October 2025
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Abstract
Keywords:
1. Introduction
2. Method: Experimental Benchmark
3. Numerical Method
3.1. Governing Equation
3.2. Geometry and Mesh
3.3. Material, Boundary and Initial Condition
3.4. Modeling Approach and Numerical Scheme
4. Results and Discussion
4.1. Mesh Verification
| Model | Asymp. Range | |||||||
|---|---|---|---|---|---|---|---|---|
| Transient-SST | 323.67 | 321.05 | 320.69 | 7.95 | 0.15 | 0.02 | 0.992 | |
| Transient-SST | 0.0799 | 0.0796 | 0.0794 | 2.11 | 0.47 | 0.23 | 0.996 | |
| Laminar | 329.15 | 327.63 | 328.17 | 2.82 | 0.32 | 0.11 | 0.995 | |
| Laminar | 0.0726 | 0.0728 | 0.0740 | 0.16 | 0.40 | 2.52 | 1.003 |
4.2. Steady-State and Transient Modeling
4.3. Reynolds Number Validation
4.4. Local Velocity Distribution

4.5. Local Circulation Modeling on Laminar and Transition-SST

4.6. Turbulence Magnitude and Heating Power

5. Conclusions
- The two employed models were verified numerically using the Grid Convergence Index to assess its grid independence.
- The predicted temperature difference across the loop showed good agreement with experimental data for both laminar and Transition-SST models, falling within the acceptable range of variation.
- The laminar model underpredicted bulk velocity, while the Transition-SST model reproduced the experimental Reynolds number more accurately. This is due to the Transition-SST model successfully resolves local circulation and eddy-viscosity development, whereas the laminar model misinterprets the same phenomena as backflow, causing reduced global circulation strength.
- Velocity vector plots indicated stronger recirculation zones in the laminar case. These structures are consistent with the presence of turbulent transport, which in the Transition-SST model manifests as finite eddy-viscosity. The agreement between local flow patterns and the eddy-viscosity distribution supports the physical realism of the Transition-SST results.
- The increasing eddy-viscosity ratio with power confirmed the progressive transition from laminar to transitional–turbulent flow regimes, underscoring the importance of turbulence modeling for accurate prediction of Natural Circulation Loop.
Author Contributions
Funding
Conflicts of Interest
Nomenclature
| Cartesian coordinate | Field variable (for mesh study) | ||
| Velocity component of x and y | Scalar value of | ||
| Time | |||
| Density | Subscripts | ||
| Pressure | eff | Effective property | |
| Viscosity | t | Turbulent quantity | |
| Gravity acceleration | HI | Heater inlet | |
| Thermal expansion coefficient | HO | Heater outlet | |
| Temperature | HC | Heater center | |
| Thermal conductivity | avg | Average | |
| Prandtl number | 0 | Reference point | |
| Production Term | |||
| Dissipation term | |||
| Transition model destruction term | |||
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| #Mesh | Description | Normal Cell Size [mm] | First Layer Thickness [mm] |
Refinement factor [-] |
Maximum y+ [-] |
|---|---|---|---|---|---|
| 3 | Coarse | 2 | 0.31 | 1.3 | 2.45 |
| 2 | Medium | 1.4 | 0.22 | 1.3 | 1.7 |
| 1 | Fine | 1 | 0.16 | 1.3 | 1.2 |
| Parameter | a | b | c | d |
|---|---|---|---|---|
| 2263.723 | -0.636 | - | - | |
| 0.390 | 1.954 x 10-4 | - | - | |
| 1396.018 | 0.172 | - | - | |
| 7.551 x 10-2 | -2.776 x 10-4 | 3.489 x 10-7 | -1.474 x 10-10 |
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