Directional Bending Performance of 4-Leg Jacket Substructure Supporting a 3MW Offshore Wind Turbine
Abstract
:1. Introduction
- Assessment of structural responses of a 4-leg jacket substructure under extreme environmental loads (i.e., wind, wave, and current loading conditions);
- Determination of critical bending direction of the 4-leg jacket substructure under various loading conditions;
- Calculation of percentage contribution of the environmental load effects to the total structural response of the 4-leg jacket substructure supporting an OWT.
2. 3 MW 4-Leg Jacket Substructure Model
2.1. Configuration of the 4-Leg Jacket Substructure
2.2. Environmental Conditions
3. Modeling of the Support Structure
3.1. Tower
3.2. Transition Piece (TP)
3.3. Jacket Structure
3.4. Material Properties
4. Parameters for the Study
4.1. Wave Parameters
4.2. Environmental Loading Directionality
4.3. Critical Responses and Critical Loading Angles
4.4. Design Check
- Under axial tension and bending
- Under axial compression and bending
4.5. Assumptions for the Numerical Analysis
5. Results of the Analysis
5.1. Modal Analysis
5.2. Structural Analysis
5.2.1. Structural Responses under Extreme Environmental Loads (Env Loads)
5.2.2. Structural Responses under DLC Loads
5.3. Structural Responses under Combined Loads (Env Loads + DLC Loads)
6. Conclusions and Observations
- Under Env loading conditions, the 4-leg jacket substructure shows maximum structural responses (i.e., maximum lateral displacements at the tower-substructure interface and maximum stresses at the lower jacket legs) at the loading angles of 135° and 315°. This indicates that the smallest bending stiffness can be found in one of the 4-leg jacket diagonal directions.
- From the study above, it is also found that the polar diagrams are very useful to present directional bending performances of the 4-leg jacket substructure.
- From the structural responses under 12 DLC loading conditions, relatively large lateral displacements and stresses are obtained in the cases of DLC2, DLC3, DLC4, DLC9, and DLC10. These five cases also showed similar results when the 12 DLC loads are combined with the 24 Env loading directions.
- Under CB loading conditions, critical angles for the bending of the 4-leg jacket substructure are found to be from 105° to 150°. In order to maximize the structural efficiency of the jacket substructure, it is recommended that this range of the jacket’s angle in the plane should be avoided from the condition of facing the critical design loads.
- Comparing to the total structural responses of the 4-leg jacket substructure, supporting a 3MW offshore wind turbine, it is found that the maximum Env load effects show a moderate contribution; the maximum percentage of 27.24% in the case of lateral displacements at the tower-substructure interface and the maximum percentage of 37.39% in the case of stresses at the lower jacket legs.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Description | Symbol | Value | Unit |
---|---|---|---|
Rotor-Nacelle-Assembly (RNA) | |||
Rating | 3MW | ||
Rotor orientation | Upwind, 3 blades | ||
Hub height above platform | 56.78 | m | |
Mass of the rotor | 64.60 | ton | |
Mass of the nacelle | 128.00 | ton | |
Mass of the RNA | 192.60 | ton | |
Tower | |||
Bottom diameter | 450.00 | cm | |
Bottom thickness | 3.40 | cm | |
Top diameter | 307.00 | cm | |
Top thickness | 1.80 | cm | |
4-Leg Jacket Substructure | |||
Height | 32.47 | m | |
Leg diameter | 104.70 | cm | |
Leg thickness | 1.60 | cm | |
Brace diameter | 50.80 | cm | |
Brace thickness | 1.90 | cm |
Description | Symbol | Value | Unit |
---|---|---|---|
Wind | |||
Wind speed in 50-year condition | 42.50 | m/s | |
Current | |||
Current velocity in 50-year condition | 1.04 | m/s | |
Wave | |||
Average water depth | 14.00 | m | |
Significant wave height in 50-year condition | 5.97 | m | |
Wave period in 50-year condition | 11.16 | s |
Parameter | Symbol | Value | Unit |
---|---|---|---|
Density | 7850 | ||
Young’s modulus | 210,000 | MPa | |
Yield strength | 355 | MPa | |
Poisson’s ratio | 0.3 | - |
DLC | Descriptions | Force (kN) | Moment (kNm) | |||||
---|---|---|---|---|---|---|---|---|
DLC1 | Max | −39.0 | −959.0 | −5208.0 | 49,041.0 | −2496.0 | 2173.0 | |
DLC2 | Min | −114.0 | 923.0 | −5197.0 | −47,885.0 | −4998.0 | −1731.0 | |
DLC3 | Max | 781.0 | 4.0 | −6424.0 | 2369.0 | 45,635.0 | 373.0 | |
DLC4 | Min | −699.0 | 49.0 | −5168.0 | 1038.0 | −39,301.0 | −298.0 | |
DLC5 | Max | 31.0 | −146.0 | −5244.0 | 6720.0 | 5034.0 | 5385.0 | |
DLC6 | Min | −181.0 | 198.0 | −5063.0 | −10,207.0 | −9979.0 | −6124.0 | |
DLC7 | Max | 1051.0 | 807.0 | −4705.0 | −23,378.0 | 8965.0 | −1222.0 | |
DLC8 | Min | −978.0 | −653.0 | −4737.0 | −22,496.0 | 10,333.0 | −742.0 | |
DLC9 | Max | −714.0 | 1384.0 | −4722.0 | −19,975.0 | −10,358.0 | −1072.0 | |
DLC10 | Min | 392.0 | −1352.0 | −4739.0 | 11,407.0 | 1986.0 | 964.0 | |
DLC11 | Max | 220.0 | 745.0 | −4600.0 | 4275.0 | 3995.0 | 885.0 | |
DLC12 | Min | 639.0 | 23.0 | −7203.6 | 2282.0 | 37,895.0 | 866.0 |
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Tran, T.-T.; Kang, S.; Lee, J.-H.; Lee, D. Directional Bending Performance of 4-Leg Jacket Substructure Supporting a 3MW Offshore Wind Turbine. Energies 2021, 14, 2725. https://doi.org/10.3390/en14092725
Tran T-T, Kang S, Lee J-H, Lee D. Directional Bending Performance of 4-Leg Jacket Substructure Supporting a 3MW Offshore Wind Turbine. Energies. 2021; 14(9):2725. https://doi.org/10.3390/en14092725
Chicago/Turabian StyleTran, Thanh-Tuan, Sangkyun Kang, Jang-Ho Lee, and Daeyong Lee. 2021. "Directional Bending Performance of 4-Leg Jacket Substructure Supporting a 3MW Offshore Wind Turbine" Energies 14, no. 9: 2725. https://doi.org/10.3390/en14092725
APA StyleTran, T.-T., Kang, S., Lee, J.-H., & Lee, D. (2021). Directional Bending Performance of 4-Leg Jacket Substructure Supporting a 3MW Offshore Wind Turbine. Energies, 14(9), 2725. https://doi.org/10.3390/en14092725