Initial Design of a Novel Barge-Type Floating Offshore Wind Turbine in Shallow Water
Abstract
:1. Introduction
2. Methodology Description
2.1. Aerodynamics
2.2. Hydrodynamics
2.2.1. Governing Equations
2.2.2. Equations of Motion
3. Numerical Model
3.1. Design of the Substructure for the 10 MW Wind Turbine
3.2. Mooring System
4. Stability Analysis
- (1)
- The area under the righting moment curve being equal to or greater than 140% of the area under the wind heeling moment curve for the inclination angles until the second intercept.
- (2)
- Over the entire range of angles from upright to the second intercept, the righting moment curve shall be positive.
- (1)
- The ratio of the max righting moment and heeling moment should be greater than 2.
- (2)
- The initial equilibrium inclination for the damaged condition should be less than 17°
5. Coupled Time Domain Analysis
5.1. Free Decay Tests
5.2. Environmental Conditions
5.3. Comparative Analysis of Different Mooring System Designs
5.4. Influences of Wind and Wave Loads on the Barge-Type FOWT Dynamics
6. Conclusions and Future Work
- (1)
- The newly designed barge FOWT system is proven to have reasonably good stability. Its six DoF natural periods and intact and damage stability meet the relevant DNV recommendations.
- (2)
- The difference in the dynamic response of the barge FOWT with the 4 × 2 and the 3 × 3 mooring system design is not very significant. Therefore, the 4 × 2 mooring system design is chosen from an economic point of view. The maximum mooring line tension is 5634.3 kN, which is sufficiently smaller than the breaking load of the mooring lines.
- (3)
- The platform motions under the considered 18 load cases are also studied. The motion responses of the integrated barge-type FOWT system are within reasonable ranges. Particularly, the largest pitch and roll responses are demonstrated to be acceptable based on the limited scope of simulations.
- (1)
- Considering more complete environmental conditions (e.g., including current effects);
- (2)
- Checking that the critical structural responses against the ultimate strengths of relevant materials;
- (3)
- Ensuring that the platform meets the design life through fatigue assessment;
- (4)
- Checking the proposed mooring system can well function with the failure of an arbitrary mooring line;
- (5)
- Ensuring the design of turbine and blades meeting the relevant standards.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Parameter | Values |
---|---|
Wind Regime | IEC class 1 A |
Cut-in wind speed | 4.0 m/s |
Rated wind speed | 11.4 m/s |
Cut-out wind speed | 25.0 m/s |
Rotor diameter | 178.3 m |
Hub diameter | 5.6 m |
Hub Height | 119.0 m |
Minimum rotor speed | 6.0 rpm |
Maximum rotor speed | 9.6 rpm |
Maximum tip speed | 90.0 m/s |
Hub overhang | 7.1 m |
Shaft tilt angle | 5.0 deg |
Blade mass | 230,667 kg |
Nacelle mass | 446,036 kg |
Tower Mass | 591,758 kg |
Model ID | Platform Width (Incl. Skirt) | Compartment Width | Skirt Width | Retaining Walls Width |
---|---|---|---|---|
M1 | 54 | 10 | 3 | 6 |
M2 | 56 | 10 | 3 | 6 |
M3 | 58 | 10 | 3 | 6 |
M4 | 60 | 10 | 3 | 6 |
M5 | 60 | 10 | 3 | 7 |
M6 | 60 | 10 | 3 | 8 |
M7 | 60 | 11 | 3 | 6 |
M8 | 60 | 12 | 3 | 6 |
M9 | 60.6 | 10 | 3.3 | 6 |
M10 | 61 | 10 | 3.5 | 6 |
Model ID | Frequency (rad/s) | Periods (s) |
---|---|---|
M1 | 0.34 | 18.48 |
M2 | 0.38 | 16.53 |
M3 | 0.4 | 15.71 |
M4 | 0.42 | 14.96 |
Parameter | Value |
---|---|
Barge dimensions (including skirt) | 60 × 60 × 15 m |
Moonpool dimension | 14 × 14 m |
Width of retaining walls | 6 m |
Compartment width | 10 m |
Skirt width | 3 m |
Draft | 10 m |
Barge COG | (−1.349 m, 0 m, −4.595 m) |
Platform mass (including ballast) | 20,371.539 t |
Platform steel mass | 4996.68 t |
Displacement | 21,112.20 m3 |
Parameter | Valuer |
---|---|
Line type | Studless chain |
Mooring line diameter | 0.153 m |
Mooring line length | 723.5 m |
Submerged weight per unit length | 0.447 t/m |
Radius to anchor from the platform centerline | 735.23 m |
Minimum breaking load | 2.04 × 104 kN |
Axial stiffness | 2.1 × 106 kN |
Pretension at fairlead | 635.23 kN |
DoF | Natural Periods [s] | |
---|---|---|
Simulated | Recommended | |
Surge/Sway | 103.09 | ~100 |
Heave | 7.62 | 5–10 |
Pitch/Roll | 15.67 | 9–16 |
Yaw | 52.91 | 50–100 |
Load Case ID | Return Period (Year) | HS (m) | TP (s) | VHub (m/s) | Direction (°) | Turbine Status |
---|---|---|---|---|---|---|
LC1 | 50 | 8.96 | 13.50 | 34.16 | 0 | Parked |
LC2 | 8.45 | 10.40 | 36.78 | 45 | ||
LC3 | 8.13 | 9.30 | 40.05 | 90 | ||
LC4 | 8.69 | 16.40 | 35.55 | 135 | ||
LC5 | 10.16 | 13.80 | 49.01 | 180 | ||
LC6 | 9.07 | 11.50 | 37.79 | 225 | ||
LC7 | 5 | 5.10 | 11.10 | 20.77 | 0 | Operating |
LC8 | 6.21 | 9.80 | 24.92 | 45 | ||
LC9 | 5.94 | 8.20 | 24.96 | 90 | ||
LC10 | 5.47 | 13.60 | 23.37 | 135 | ||
LC11 | 4.99 | 12.20 | 20.15 | 180 | ||
LC12 | 6.42 | 10.00 | 24.82 | 225 | ||
LC13 | 2 | 3.50 | 10.80 | 15.22 | 0 | Operating |
LC14 | 4.22 | 8.70 | 19.17 | 45 | ||
LC15 | 3.68 | 7.00 | 17.40 | 90 | ||
LC16 | 4.34 | 12.20 | 18.76 | 135 | ||
LC17 | 3.81 | 10.40 | 15.64 | 180 | ||
LC18 | 4.11 | 8.30 | 18.79 | 225 |
Parameter | 4 × 2 Mooring System | 3 × 3 Mooring System |
---|---|---|
Maximum surge (m) | 6.42 | 6.24 |
Maximum sway (m) | 6.45 | 12.03 |
Maximum mooring tension (kN) | 3201.59 | 2152.00 |
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Zhou, Y.; Feng, S.; Guo, X.; Tian, F.; Han, X.; Shi, W.; Li, X. Initial Design of a Novel Barge-Type Floating Offshore Wind Turbine in Shallow Water. J. Mar. Sci. Eng. 2023, 11, 464. https://doi.org/10.3390/jmse11030464
Zhou Y, Feng S, Guo X, Tian F, Han X, Shi W, Li X. Initial Design of a Novel Barge-Type Floating Offshore Wind Turbine in Shallow Water. Journal of Marine Science and Engineering. 2023; 11(3):464. https://doi.org/10.3390/jmse11030464
Chicago/Turabian StyleZhou, Yiming, Sensen Feng, Xiaojiang Guo, Feng Tian, Xu Han, Wei Shi, and Xin Li. 2023. "Initial Design of a Novel Barge-Type Floating Offshore Wind Turbine in Shallow Water" Journal of Marine Science and Engineering 11, no. 3: 464. https://doi.org/10.3390/jmse11030464
APA StyleZhou, Y., Feng, S., Guo, X., Tian, F., Han, X., Shi, W., & Li, X. (2023). Initial Design of a Novel Barge-Type Floating Offshore Wind Turbine in Shallow Water. Journal of Marine Science and Engineering, 11(3), 464. https://doi.org/10.3390/jmse11030464