Study on Aerodynamic Performance and Wake Characteristics of a Floating Offshore Wind Turbine in Wind–Wave Coupling Field
Abstract
:1. Introduction
2. Numerical Configurations
2.1. Wind Turbine Geometry
2.2. Governing Equations and Boundary Conditions
2.3. Computational Domain and Grid Topology
2.4. Numerical Validation
3. Results and Discussion
3.1. Aerodynamic Performance
3.2. Wake Characteristics
4. Remarks and Conclusions
- (1)
- The effect of wave period on the amplitude and period of pitch motion of a floating platform was substantial, although it did not impact the maximum angle of pitch motion at the same wave height. On the other hand, changes in wave height had a considerable impact on both the amplitude and maximum angle of pitch motion at the same wave period.
- (2)
- As the wave period grows longer, the wind turbine’s added speed diminishes, as does the pitch speed of the blade, and the weakening of unsteady flow separation on the blade surface enhances aerodynamic performance. However, due to wind and wave coupling, the floating wind turbine tilts at a specific angle relative to the incoming flow direction, resulting in wave-induced pitch motion that reduces the turbine’s power output to some extent. Typically, as wave height rises, the wind turbine’s average power output tends to increase.
- (3)
- In a smaller wave period, the interaction frequency between the wind turbine and the wake is heightened and intensified. The wake experiences more acute changes and the process of mixing the final wake zone and incoming flow is delayed. As the wave period increases, a larger pitch angle facilitates the more significant mixing of the external high-velocity region and internal low-velocity region, accelerating the wake velocity recovery process. Concurrently, the near-wake region and transition region’s length is shortened, the development process of the vortex structure in the far-wake region is expedited, the symmetry of the far wake deteriorates, and the meandering phenomenon of the wake can be clearly observed.
- (4)
- The wake’s velocity distribution is influenced by wave height, which in turn affects the pitch amplitude of the floating wind turbine, leading to a stronger blade–wake interaction and a significant impact on the formation and destruction of the wake vortex structure, altering the evolution law of the wake structure.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
FOWT | Floating offshore wind turbine |
VOF | Volume of fluid |
IDDES | Improved delayed detached eddy simulation |
DFBI | Dynamic fluid–body interaction |
PIV | Particle image velocimetry |
BEM | Blade element momentum |
FVM | Free vortex method |
CFD | Computational fluid dynamics |
OC4 | Code comparison collaboration continuation |
OC3 | Code comparison collaboration |
LES | Large eddy simulation |
RANS | Reynolds average Navier–Stokes |
DES | Detached eddy simulation |
SIMPLE | Semi-implicit pressure linked equation |
AMR | Adaptive mesh refinement |
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Case | Minimum Grid (m) | Total Grid Number | Relative Difference | |
---|---|---|---|---|
Power | Thrust | |||
case1 | 0.05 | 10.56 | 6.52% | 7.40% |
case1 | 0.04 | 13.20 | 3.70% | 4.56% |
case3 | 0.02 | 17.61 | 1.80% | 2.48% |
case4 | 0.02 | 20.18 | 1.55% | 2.06% |
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Liang, X.; Li, Z.; Han, X.; Fu, S.; Zhu, W.; Pu, T.; Sun, Z.; Yang, H.; Shen, W. Study on Aerodynamic Performance and Wake Characteristics of a Floating Offshore Wind Turbine in Wind–Wave Coupling Field. Sustainability 2024, 16, 5324. https://doi.org/10.3390/su16135324
Liang X, Li Z, Han X, Fu S, Zhu W, Pu T, Sun Z, Yang H, Shen W. Study on Aerodynamic Performance and Wake Characteristics of a Floating Offshore Wind Turbine in Wind–Wave Coupling Field. Sustainability. 2024; 16(13):5324. https://doi.org/10.3390/su16135324
Chicago/Turabian StyleLiang, Xiaoling, Zheng Li, Xingxing Han, Shifeng Fu, Weijun Zhu, Tianmei Pu, Zhenye Sun, Hua Yang, and Wenzhong Shen. 2024. "Study on Aerodynamic Performance and Wake Characteristics of a Floating Offshore Wind Turbine in Wind–Wave Coupling Field" Sustainability 16, no. 13: 5324. https://doi.org/10.3390/su16135324
APA StyleLiang, X., Li, Z., Han, X., Fu, S., Zhu, W., Pu, T., Sun, Z., Yang, H., & Shen, W. (2024). Study on Aerodynamic Performance and Wake Characteristics of a Floating Offshore Wind Turbine in Wind–Wave Coupling Field. Sustainability, 16(13), 5324. https://doi.org/10.3390/su16135324