Investigation of Hydrodynamic Forces for Floating Offshore Wind Turbines on Spar Buoys and Tension Leg Platforms with the Mooring Systems in Waves
Abstract
:1. Introduction
2. Platform Configuration and Mooring Layout
2.1. OC3-Hywind Spar/UMaine-Hywind Spar
2.2. MIT/NREL TLP
2.3. UMaine-Hywind TLP
3. Structure of Modular System
4. Mathematical Model
4.1. Coordinate System
4.2. Governing Equation
4.3. Cummins Time Domain Equation
4.4. Wave Spectrum
5. Analysis of Hydrodynamic Coefficients
5.1. OC3-Hywind Spar/UMaine-Hywind Spar
5.2. MIT/NREL TLP
5.3. UMaine TLP
6. Dynamic Responses of Floating OWTs
6.1. OC3-Hywind Spar
6.2. UMaine-Hywind Spar
6.3. MIT/NREL TLP
6.4. UMaine TLP
7. Conclusions
- For the spar buoy concept, the decrease in water depth results in larger added-mass coefficient in the pitch mode 𝜇55, but causes smaller radiation damping coefficient in the pitch mode 𝜈55.
- For the design of the MIT/NREL TLP, the larger displaced water and the wetted surface in the surge and pitch modes would lead to higher added-mass coefficients 𝜇11 and 𝜇55 than the value in the heave mode 𝜇33.
- Compared to the design of the MIT/NREL TLP, the large radius and diameter of the pontoon for the UMaine TLP would produce high value of the added-mass coefficient in the pitch mode 𝜇55. The increases in the radius and diameter of the pontoon are accompanied with low resonance frequency of the radiation damping coefficient in the surge mode, whereas the decrease in the diameter of the column is related to low resonance frequency of the heave coefficient.
- Due to the influence of unstretched mooring lines parallel to the seabed on the OC3-Hywind spar, the catenary mooring system has considerable contribution to the surge RAO, but provides for less effect on the heave RAO.
- From the computed results of UMaine-Hywind spar in irregular seas, the decrease in the water depth would lead to more prominent resonance peaks of pitch RAOs and also shift the peaks to the high-frequency region as a result of proximity to the seabed.
- It is demonstrated in this paper that the surge RAO is considerably larger than heave and pitch RAOs for the TLP concept due to high stiffening in the vertical plane of the taut-leg mooring system. Specifically, the large cross-sectional areas of the pontoons for the UMaine TLP would produce larger radiation added-mass force in the surge mode than in the pitch mode.
- Concerning the floater’s stability in severe sea conditions, it is much suitable to install the spar buoy in deep water area when neglecting the cost of the mooring system. For the TLP option, it is better to consider UMaine TLP rather than MIT/NREL TLP because the surge RAO can be well suppressed.
Author Contributions
Acknowledgments
Conflicts of Interest
References
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OC3-Hywind Spar | UMaine-Hywind Spar | MIT/NREL TLP | UMaine TLP | |
---|---|---|---|---|
Water Depth (m) | 320 | 200 | 200 | 200 |
Diameter (m) | 6.5–9.4 | 6.5–9.4 | 18 | 6.5 (upper column)/15 (lower column) |
Draft (m) | 120 | 120 | 47.89 | 24 |
Mass, including ballast (kg) | 7.466×106 | 7.466 × 106 | 8.6 × 106 | 7.7494 × 105 |
CM location of the platform below SWL (m) | 89.92 | 89.92 | 40.61 | 19.72 |
Roll inertia about CM ( kg·m2) | 4.229 × 109 | 4.229 × 109 | 5.716 × 108 | 1.5078 × 108 |
Pitch inertia about CM ( kg·m2) | 4.229 × 109 | 4.229 × 109 | 5.716 × 108 | 1.5078 × 108 |
Yaw inertia about CM ( kg·m2) | 1.642 × 108 | 1.642 × 108 | 3.614 × 108 | 9.885 × 107 |
Mooring System | Catenary | Catenary | Taut-Leg | Taut-Leg |
Number of mooring lines | 3 | 3 | 8 (4 pairs) | 3 |
Un-stretched line length (m) | 902.2 | 468 | 151.7 | 171.4 |
Line diameter (m) | 0.09 | 0.09 | 0.127 | 0.222 |
Line mass density (kg/m) | 77.71 | 145 | 116 | 302.89 |
Line extensional stiffness (N) | 3.842 × 108 | 3.842 × 108 | 1,500,000,000 | 7,720,000,000 |
Length/Width (m/m) | Panel Type | Panel Number | |
---|---|---|---|
Upper Column | 1.63/0.33 | Triangular | 642 |
Taper | 0.86/0.5 | Triangular | 236 |
Lower Column | 1.72/1 | Triangular | 442 |
Length/Width (m/m) | Panel Type | Number of Panels | |
---|---|---|---|
Center Column | 2.92/2.81 | Triangular | 1163 |
Pontoon | 2/0.54 | Triangular | 843 |
Length/Width (m/m) | Panel Type | Panel Number | |
---|---|---|---|
Upper Hull | 0.79/1 | Triangular | 648 |
Lower Hull | 2/0.25 | Triangular | 332 |
Tendon Arm (Pontoon) | 5/0.6 | Triangular | 340 |
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Lin, Y.-H.; Kao, S.-H.; Yang, C.-H. Investigation of Hydrodynamic Forces for Floating Offshore Wind Turbines on Spar Buoys and Tension Leg Platforms with the Mooring Systems in Waves. Appl. Sci. 2019, 9, 608. https://doi.org/10.3390/app9030608
Lin Y-H, Kao S-H, Yang C-H. Investigation of Hydrodynamic Forces for Floating Offshore Wind Turbines on Spar Buoys and Tension Leg Platforms with the Mooring Systems in Waves. Applied Sciences. 2019; 9(3):608. https://doi.org/10.3390/app9030608
Chicago/Turabian StyleLin, Yu-Hsien, Shin-Hung Kao, and Cheng-Hao Yang. 2019. "Investigation of Hydrodynamic Forces for Floating Offshore Wind Turbines on Spar Buoys and Tension Leg Platforms with the Mooring Systems in Waves" Applied Sciences 9, no. 3: 608. https://doi.org/10.3390/app9030608
APA StyleLin, Y. -H., Kao, S. -H., & Yang, C. -H. (2019). Investigation of Hydrodynamic Forces for Floating Offshore Wind Turbines on Spar Buoys and Tension Leg Platforms with the Mooring Systems in Waves. Applied Sciences, 9(3), 608. https://doi.org/10.3390/app9030608