Numerical Study of the Dynamic Stall Effect on a Pair of Cross-Flow Hydrokinetic Turbines and Associated Torque Enhancement Due to Flow Blockage
Abstract
:1. Introduction
2. Blockage Effect on a Single Turbine
2.1. Materials and Methodology
2.1.1. Turbine Geometry
2.1.2. Pre-Processing
2.1.3. Turbulence Model, Boundary Conditions, and Numerical Schemes
2.2. Sensitivity Analysis
2.2.1. Convergence Criterion
2.2.2. Iterative Spatial and Temporal Sensitivity Analysis
2.3. Results and Discussion
2.3.1. Comparison with Experimental Results
2.3.2. The Laboratory Frame of Reference
2.3.3. The Blade Frame of Reference
- (1)
- Before the maximum point, the torque generation was due the attached fast flow on the inner of the blade, which created an associated low pressure region and suction force. As the azimuthal angle increased, the relative angle between the incoming flow and the blade chord also increased and resulted in higher lift and torque. Higher blockage ratio created faster flow on the suction side and smaller area of the blade wake.
- (2)
- After reaching the maximum torque, the blade experienced the dynamic stall effect and the lift force was maintained by a vortex shed from the leading edge and attached on the suction side. Higher blockage ratio created a bigger and stronger vortex, which maintained higher lift and torque.
3. Twin Turbine Configurations
3.1. Materials and Methodology
3.1.1. System Geometry
3.1.2. Simulation Setup
3.2. Results and Discussion
3.2.1. The Laboratory Frame of Reference
3.2.2. The Blade Frame of Reference
4. Summary and Conclusions
- (1)
- At the same blockage ratio, moving the turbine closer a fixed wall created positive impact on the positive torque phase.
- (2)
- Placing a moving object near the turbine could have both positive and negative impact depending on the movement direction of the object. Specifically, another turbine blade moving against the incoming freestream flow would have reduced the torque while movement in the same direction of the freestream created a stronger and bigger LEV to maintain higher hydrodynamic torque.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
MHK | Marine hydrokinetic turbine; |
VAWT | Vertical axis wind turbine; |
PIV | Particle image velocimetry; |
CFD | Computational fluid dynamics. |
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Parameter | Symbol | Value (Unit) |
---|---|---|
Blade chord | c | 2.54 (cm) |
Solidity | 0.39 (-) | |
Reynolds number (diameter based) | 20,000 (-) | |
Water density | 998 (kg/m) | |
Freestream velocity | 0.3 (m/s) | |
Blockage ratio | 0.197/0.253/0.338/0.506 (-) |
Case | Total Number of Cells | ||
---|---|---|---|
1 | 222 | 30 | 588,649 |
2 | 296 | 40 | 1,026,883 |
3 | 333 | 45 | 1,304,364 |
4 | 370 | 50 | 1,605,068 |
5 | 444 | 60 | 2,305,123 |
Case | Note | |
---|---|---|
T1 Experiment | 19.7% | —Optimal power output |
Numerical Model 1 | 19.7% | Same blockage ratio as the experiment |
Numerical Model 2 | 25.3% | Same physical dimensions as the experiment |
Case | Difference from the Baseline | ||
---|---|---|---|
Single turbine, (baseline) | 1.25 | 0.19 | N/A |
Single turbine, | 1.53 | 0.41 | 115% |
Forward counter-rotating | 1.65 | 0.47 | 144% |
Backward counter-rotating | 1.53 | 0.32 | 65.7% |
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Doan, M.N.; Obi, S. Numerical Study of the Dynamic Stall Effect on a Pair of Cross-Flow Hydrokinetic Turbines and Associated Torque Enhancement Due to Flow Blockage. J. Mar. Sci. Eng. 2021, 9, 829. https://doi.org/10.3390/jmse9080829
Doan MN, Obi S. Numerical Study of the Dynamic Stall Effect on a Pair of Cross-Flow Hydrokinetic Turbines and Associated Torque Enhancement Due to Flow Blockage. Journal of Marine Science and Engineering. 2021; 9(8):829. https://doi.org/10.3390/jmse9080829
Chicago/Turabian StyleDoan, Minh N., and Shinnosuke Obi. 2021. "Numerical Study of the Dynamic Stall Effect on a Pair of Cross-Flow Hydrokinetic Turbines and Associated Torque Enhancement Due to Flow Blockage" Journal of Marine Science and Engineering 9, no. 8: 829. https://doi.org/10.3390/jmse9080829
APA StyleDoan, M. N., & Obi, S. (2021). Numerical Study of the Dynamic Stall Effect on a Pair of Cross-Flow Hydrokinetic Turbines and Associated Torque Enhancement Due to Flow Blockage. Journal of Marine Science and Engineering, 9(8), 829. https://doi.org/10.3390/jmse9080829