Performance Improvement of a Straight-Bladed Darrieus Hydrokinetic Turbine through Enhanced Winglet Designs
Abstract
:1. Introduction
2. Methodology
2.1. Hydrodynamic Coefficients of HK Turbines
- Power coefficient:
- Torque coefficient:
- Tangential and normal force coefficients:
- Tip speed ratio (TSR):Also, it is possible to obtain the pressure, Equation (6), and skin friction, Equation (7), coefficients as the non-dimensional numbers associated with the pressure and wall shear stress magnitude [24].
- Pressure and skin friction coefficients:
2.2. Geometric Model
3. Mesh and Computational Set-Up
Results of Grid Convergence Analysis
4. Results and Discussion
4.1. Validation of Simulations versus Reference Study [7]
4.2. Performance of Winglet Models
4.3. Characterization of the Turbine and the Best Winglet Model at Different TSR Values
5. Examination of Flow Structures on Straight and Winglet Turbines
Analysis of the Behavior of Pressure and Skin Friction Coefficients
6. Conclusions
- While the W4560 design achieved the highest average power coefficient, similar performance enhancements were observed with winglet configurations featuring cant and sweep angles ranging from 30° to 45° and 45° to 60°, respectively, at .
- By analyzing the hydrodynamic coefficients and comparing the base case with the turbine equipped with winglets, it was found that the power generation increase occurs in the upstream region. The rise in such coefficients is generally observed as the turbine moves through azimuthal positions ranging from 30° to 140°.
- The performance improvement with winglets happens over the entire operational range and increases with a growing tip speed ratio.
- One of the main impacts of the winglets is the influence in the tip vortex. The shape, size and strength of the tip vortex are altered due to the presence of the winglets. A second, smaller tip vortex formation was clearly observed due to the symmetrical characteristics of the winglet design.
- Analysis through the flow visualization revealed that the use of winglets weakens the detached trailing vortices and delays the flow separation near the blade tip in the upstream cycle of the turbine. Both effects contribute to the observed increase in turbine power when using winglets.
- In the upper blade area near the tip, the pressure coefficient for the straight blade tends to equalize and become negative on both the pressure and suction sides, whereas in the winglet configuration, the pressure difference is sustained. Additionally, the skin friction coefficient tends to be higher in the SB than in the WB configuration.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameter | Value |
---|---|
NACA profile of the blades | NACA4418 |
Turbine radius [] | 0.125 m |
Blade span [] | 0.3 m |
Chord length | 0.1 m |
Number of blades | 3 |
Solidity | 2.4 |
Winglet Model | Winglet Height | Chord Length | Cant Angle | Sweep Angle |
---|---|---|---|---|
Model 1 | 7% of the blade span | 25% of blade’s chord length | 15° | 60° |
Model 2 | 30° | 60° | ||
Model 3 | 45° | 60° | ||
Model 4 | Best angle from models 1 to 3 | 45° | ||
Model 5 | Best angle from models 1 to 3 | 75° |
Mesh | Number of Cells in Rotational Domain | Number of Cells in Stationary Domain | Total Number of Cells | |
---|---|---|---|---|
Coarse | 1 | 367,848 | 1,540,140 | 1,907,988 |
Fine | 0.5 | 703,080 | 2,156,196 | 2,859,276 |
Extra-fine | 0.2 | 1,174,812 | 2,926,166 | 4,100,978 |
Parameter | Value |
---|---|
Free-stream Velocity [] | 0.3 m/s |
Turbine Angular Velocity [] at | 2.4 rad/s |
Time step | 0.00364 s |
Iterations per time step | 30 |
Residuals convergence criterion | |
Time discretization | Second order implicit |
Spatial discretization | Second order upwind |
Type of Coupling | Segregated |
Coupling scheme | SIMPLE |
Grid | Number of Cells | Average Power Coefficient |
---|---|---|
Coarse | 1.90 M | 0.166 |
Fine | 2.86 M | 0.170 |
Extra fine | 4.10 M | 0.171 |
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López, O.D.; Botero, N.; Nunez, E.E.; Laín, S. Performance Improvement of a Straight-Bladed Darrieus Hydrokinetic Turbine through Enhanced Winglet Designs. J. Mar. Sci. Eng. 2024, 12, 977. https://doi.org/10.3390/jmse12060977
López OD, Botero N, Nunez EE, Laín S. Performance Improvement of a Straight-Bladed Darrieus Hydrokinetic Turbine through Enhanced Winglet Designs. Journal of Marine Science and Engineering. 2024; 12(6):977. https://doi.org/10.3390/jmse12060977
Chicago/Turabian StyleLópez, Omar D., Nicolás Botero, Emerson Escobar Nunez, and Santiago Laín. 2024. "Performance Improvement of a Straight-Bladed Darrieus Hydrokinetic Turbine through Enhanced Winglet Designs" Journal of Marine Science and Engineering 12, no. 6: 977. https://doi.org/10.3390/jmse12060977
APA StyleLópez, O. D., Botero, N., Nunez, E. E., & Laín, S. (2024). Performance Improvement of a Straight-Bladed Darrieus Hydrokinetic Turbine through Enhanced Winglet Designs. Journal of Marine Science and Engineering, 12(6), 977. https://doi.org/10.3390/jmse12060977