Hydrodynamic Investigation of a Dual-Cylindrical OWC Wave Energy Converter Integrated into a Fixed Caisson Breakwater
Abstract
:1. Introduction
2. Mathematical Model
2.1. Power Take-off Model
2.2. Boundary Value Problem
2.3. Mathematical Solutions
3. Results and Discussion
3.1. Validation
3.2. Hydrodynamic Characteristics Inside the OWC Chamber
3.3. Effects of Relative Diameter on Conversion Efficiency and Hydrodynamic Loads
3.4. Effect of the Angle between the Baffle Wall
3.5. Comparison of the Geometry Parameters
4. Conclusions
- The water surface elevation inside the chamber increases with the increasing wave period until it reaches a local maximum at a certain period (i.e., T = 0.85 s in the current study) and then starts to decrease.
- The conversion efficiency of the OWC device for different relative diameters and the baffle wall angles increased with the increasing wave number kd in the low-frequency zone. The corresponding kd for the optimal conversion efficiency of the OWC shifts towards the shorter period region with the increase of the relative diameter D1/D2.
- Given the same wave and geometry condition, the optimal conversion efficiency occurs when the relative cylindrical diameter D1/D2 is 0.4 and the baffle wall angle is 180°. It is hence concluded that the theoretical optimal geometry parameters as D1/D2 = 0.4 and θ = 180° are recommended for a better capacity of wave power extraction.
- The wave loads of the whole OWC go up with the increase of the wave number and then shows a fast decreasing trend in high-frequency regions.
- Compared with baffle-wall angle θ, the diameter ratio D1/D2 of the dual cylinders plays a dominant role in increasing the wave energy conversion efficiency. While for a specific incident wave period, the power extraction capacity of the OWC mainly determined by the angle of the baffle wall in the chamber.
Author Contributions
Funding
Conflicts of Interest
References
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Dimensional Variable | Physical Unit |
---|---|
Wave amplitude, A | m |
Water depth, d | m |
Diameter of the outer cylinder, D1 | mm |
Diameter of the inner cylinder, D2 | mm |
Gravitational acceleration, g | m∙s−2 |
Height of the cylinder, h | mm |
Incident wave height, H | m |
Incident wave number, k | -- |
Air pressure, P0 | kPa |
Height of the opening, s | mm |
Time, t | s |
Velocity potential, Φ | m∙s−1 |
Wave period, T | s |
Angular frequency, ω | rad∙s−1 |
Water density, ρ | kg∙m−3 |
The angle between partition walls, θ | -- |
Power extraction efficiency, ξ | % |
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Wan, C.; Yang, C.; Fang, Q.; You, Z.; Geng, J.; Wang, Y. Hydrodynamic Investigation of a Dual-Cylindrical OWC Wave Energy Converter Integrated into a Fixed Caisson Breakwater. Energies 2020, 13, 896. https://doi.org/10.3390/en13040896
Wan C, Yang C, Fang Q, You Z, Geng J, Wang Y. Hydrodynamic Investigation of a Dual-Cylindrical OWC Wave Energy Converter Integrated into a Fixed Caisson Breakwater. Energies. 2020; 13(4):896. https://doi.org/10.3390/en13040896
Chicago/Turabian StyleWan, Chang, Can Yang, Qinghe Fang, Zaijin You, Jing Geng, and Yongxue Wang. 2020. "Hydrodynamic Investigation of a Dual-Cylindrical OWC Wave Energy Converter Integrated into a Fixed Caisson Breakwater" Energies 13, no. 4: 896. https://doi.org/10.3390/en13040896
APA StyleWan, C., Yang, C., Fang, Q., You, Z., Geng, J., & Wang, Y. (2020). Hydrodynamic Investigation of a Dual-Cylindrical OWC Wave Energy Converter Integrated into a Fixed Caisson Breakwater. Energies, 13(4), 896. https://doi.org/10.3390/en13040896