Gate-Opening Criterion for Generating Dam-Break Flow in Non-Rectangular Wet Bed Channels
Abstract
:1. Introduction
2. New Criterion for the Gate Motion
3. Numerical Model
3.1. Governing Equations
3.2. Turbulence Modeling
3.3. Computational Domain, Boundary, and Initial Conditions
3.4. General Moving Objects
3.5. Sensitivity of Grid Size
4. Results
4.1. Model Validation
4.2. Water Depth at Fixed Position
4.3. Influence of the Gate Motion
4.4. Wave Front Velocity
5. Discussion
6. Conclusions
- (1)
- In the triangular channel, the dam-break simulated by removing a gate with the proposed criterion time (i.e., Equation (2)) approximates the instantaneous dam-break better than the Lauber–Hager criterion time. In particular, the Lauber–Hager criterion is invalid for generating the dam-break flow in wet-bed channels. The gate-opening time adopted in the laboratory facility should be determined based on the channel cross-sectional shape and the downstream/upstream water depth ratio.
- (2)
- At the initial stage of dam-break, the wave front velocity under the influence of the gate is much smaller than that of the instantaneous dam-break. This means that the gate has a great blocking effect on the dam-break flood. For the same condition, the opening time of the triangular channel is significantly affected by the gate compared with the rectangular channel. In non-rectangular channels, even if the gate is opened quickly, the influence of the gate cannot be ignored.
- (3)
- The gate motion leads to the variation of RRSME, representing the difference between the water depths related to the instantaneous dam failure and the dam-break generated by lifting a gate. The RRSME increases with the increase of the gate-opening time and decreases with the increase of the distance from the gate. This is particularly pronounced near the gate.
- (4)
- The Lauber–Hager criterion provides a conservative estimation of the gate opening time in the rectangular dry bed.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Cross-Section | Blocks’ Domain (m) [x; y; z] | xmin | xmax | ymin | ymax | zmin | zmax |
---|---|---|---|---|---|---|---|
Rectangle | [−8.37~9.63; 0~1; 0~0.5] | No-slip | Outflow | No-slip | No-slip | No-slip | Symmetry |
Triangle | [−8.37~9.63; 0~1; 0~0.5] | No-slip | Outflow | No-slip | No-slip | No-slip | Symmetry |
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Yang, S.; Wang, B.; Guo, Y.; Zhang, J.; Chen, Y. Gate-Opening Criterion for Generating Dam-Break Flow in Non-Rectangular Wet Bed Channels. Energies 2020, 13, 6280. https://doi.org/10.3390/en13236280
Yang S, Wang B, Guo Y, Zhang J, Chen Y. Gate-Opening Criterion for Generating Dam-Break Flow in Non-Rectangular Wet Bed Channels. Energies. 2020; 13(23):6280. https://doi.org/10.3390/en13236280
Chicago/Turabian StyleYang, Sha, Bo Wang, Yakun Guo, Jianmin Zhang, and Yunliang Chen. 2020. "Gate-Opening Criterion for Generating Dam-Break Flow in Non-Rectangular Wet Bed Channels" Energies 13, no. 23: 6280. https://doi.org/10.3390/en13236280
APA StyleYang, S., Wang, B., Guo, Y., Zhang, J., & Chen, Y. (2020). Gate-Opening Criterion for Generating Dam-Break Flow in Non-Rectangular Wet Bed Channels. Energies, 13(23), 6280. https://doi.org/10.3390/en13236280