Research on the Effect of a Heave Plate on the Dynamics of the Floating Wind Turbine Using Model Tests
Abstract
:1. Introduction
2. Experiment Setup
2.1. Floating Wind Turbine Model
2.2. The Test Equipment
2.3. Test Cases
3. Results and Discussion
3.1. The Decay Tests
3.2. Regular Wave without Wind Tests
3.3. Irregular Wave with Steady Wind Tests
4. Conclusions
- (1)
- The heave plate significantly enhances the damping of both the heave and pitch motions of the floater. For the heave damping, especially, it is three times greater than that of the original floater without the heave plate. The natural period of the floater surge, heave, and pitch are also increased by altering the hydrodynamic interaction and increasing the added mass and damping properties of the system.
- (2)
- The RC cases show that when the wave period is in the range of 15–20 s, the weakening effect of the heave plate on the heave motion is obvious; when the wave period is in the range of 20–27 s, the weakening effect of the heave plate on the pitch motion is obvious.
- (3)
- For the irregular cases, the heave plate failed to reduce the surge and pitch of the floater. However, the heave response of the floater with the heave plate is significantly reduced for the survival case, with the maximum and standard deviation decreasing by 16% and 21%, respectively. The surge response of the floater with the heave plate becomes larger, and the mean value of the No.2 mooring line force decreases accordingly. In addition, the heave plate increases the fluctuations of force and moment at the bottom of the tower.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Full Scale/m | Scale Value/mm | |
---|---|---|
Column spacing | 50 | 1000 |
Middle column diameter | 6.5 | 130 |
Total height of side column | 32 | 640 |
Diameter of side upper column | 12 | 240 |
Diameter of side lower column | 24 | 480 |
Draft | 20 m | 40 cm |
Total mass | 13,917 t | 109.4 kg |
Height of center of gravity | 10.12 m | 20.24 cm |
Ryy | 28.369 m | 56.74 cm |
Conditions | Wind Speed | Wave Height/Significant Wave Height | Wave Period/Peak Period | Spectral Peak Factor | Heave Plate | |
---|---|---|---|---|---|---|
The Decay test | / | / | / | / | Yes/No | |
RC1-3 | / | 4.0 m | 7.78/12.02/17.04 s | / | Yes/No | |
RC4-6 | / | 4.0 m | 20.51/23.33/26.16 s | / | Yes/No | |
LC1-1 | Cut-in | 3 m/s | 2.0 m | 7.5 s | 2.2 | No |
LC1-2 | Yes | |||||
LC2-1 | Rated | 11.4 m/s | 6.0 m | 10 s | 3 | No |
LC2-2 | Yes | |||||
LC3-1 | Cut-out | 25 m/s | 10.5 m | 13 s | 3.3 | No |
LC3-2 | Yes | |||||
LC4-1 | Survival | 50 m/s once in a hundred years | 13.1 m | 14.9 s | 3.3 | No |
LC4-2 | Yes |
DOF | Natural Period (s) | Damping | ||
---|---|---|---|---|
Without Heave Plate | With Heave Plate | Without Heave Plate | With Heave Plate | |
Surge | 123.2 | 132.8 | 0.143 | 0.17 |
Pitch | 23.9 | 28.5 | 0.038 | 0.1113 |
Heave | 17.4 | 20.5 | 0.01/0.084 (linear/nonlinear) | 0.0318/0.241 (linear/nonlinear) |
Cases | Heave Plate | Force X | Moment X | Moment Z |
---|---|---|---|---|
LC1 (Cut-in) | VN | 8.43 × 104 N | 4.44 × 106 N·m | 7.51 × 106 N·m |
VW | 1.00 × 105 N | 4.43 × 106 N·m | 7.49 × 106 N·m | |
Df | 18.62% | −0.23% | −0.27% | |
LC2 (Rated) | VN | 1.70 × 105 N | 7.22 × 106 N·m | 1.02 × 107 N·m |
VW | 2.35 × 105 N | 7.98 × 106 N·m | 1.13 × 107 N·m | |
Df | 38.24% | 10.53% | 10.78% | |
LC3 (Cut-out) | VN | 1.64 × 105 N | 6.98 × 106 N·m | 1.01 × 107 N·m |
VW | 2.26 × 105 N | 8.11 × 106 N·m | 1.20 × 107 N·m | |
Df | 37.80% | 16.19% | 18.81% | |
LC4 (Survival) | VN | 1.65 × 105 N | 5.02 × 106 N·m | 4.78 × 106 N·m |
VW | 1.67 × 105 N | 5.37 × 106 N·m | 5.16 × 106 N·m | |
Df | 1.21% | 6.97% | 7.95% |
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Yang, L.; Jiang, Y.; Guo, S.; Lin, Z.; Deng, W.; Liu, L. Research on the Effect of a Heave Plate on the Dynamics of the Floating Wind Turbine Using Model Tests. J. Mar. Sci. Eng. 2024, 12, 1808. https://doi.org/10.3390/jmse12101808
Yang L, Jiang Y, Guo S, Lin Z, Deng W, Liu L. Research on the Effect of a Heave Plate on the Dynamics of the Floating Wind Turbine Using Model Tests. Journal of Marine Science and Engineering. 2024; 12(10):1808. https://doi.org/10.3390/jmse12101808
Chicago/Turabian StyleYang, Lidong, Yuting Jiang, Shibo Guo, Zihe Lin, Wanru Deng, and Liqin Liu. 2024. "Research on the Effect of a Heave Plate on the Dynamics of the Floating Wind Turbine Using Model Tests" Journal of Marine Science and Engineering 12, no. 10: 1808. https://doi.org/10.3390/jmse12101808
APA StyleYang, L., Jiang, Y., Guo, S., Lin, Z., Deng, W., & Liu, L. (2024). Research on the Effect of a Heave Plate on the Dynamics of the Floating Wind Turbine Using Model Tests. Journal of Marine Science and Engineering, 12(10), 1808. https://doi.org/10.3390/jmse12101808