Influence of Varying Fractal Characteristics on the Dynamic Response of a Semi-Submersible Floating Wind Turbine Platform
Abstract
1. Introduction
2. Establishment of Geometric Model
2.1. Biomimetic Fractal Platform Inspired by Victoria Amazonica
2.2. Real-Scale Model of the Semi-Submersible FOWT
2.3. Fractal Dimension, Df
3. Boundary Conditions and Mesh Division of the FOWT
3.1. Boundary Conditions of the FOWT
3.2. Reliability Verification
4. Effect of Df on Stability of Platform
4.1. Analysis of Hydrodynamic Performance
4.2. Energy Dissipation Effects of Fractal Structures with Different Levels of Branching
5. Effect of Fractal Height on Stability of Platform
5.1. Analysis of Hydrodynamic Performance
5.2. Energy Dissipation Effects of Fractal Structures with Different Heights
6. Conclusions
- (1)
- The introduction of fractal structures significantly enhances the dynamic stability of the floating platform by increasing fluid–structure interactions and local energy dissipation. An increase in fractal complexity results in more effective wave energy absorption and a noticeable improvement in overall platform stability.
- (2)
- Among the different fractal complexities tested, the 8 L fractal structure demonstrated superior performance, effectively reducing heave, pitch, and rotational energy responses by 16.94%, 23.26%, and 35.63%, respectively, compared to the original platform.
- (3)
- Increasing the height of the fractal structures further improves the hydrodynamic performance of the platform, notably enhancing stability in the pitch direction due to intensified local vortex formation and strengthened shear interactions within the fractal cavities.
- (4)
- At the highest structure height (3 m), the fractal cavities exhibit pronounced vortex refinement and enhanced viscous dissipation effects, resulting in maximum energy absorption and significant suppression of wave-induced platform motions.
- (5)
- The structure exhibits self-similarity and modularity, making it suitable both for built-in designs of new platforms and for modular retrofits of platforms in service. It can be fabricated either through standardized plate–stiffener segmented manufacturing with on-site assembly or via large-scale additive manufacturing. This approach holds significant promise for the future design and application of floating offshore wind turbine platforms.
7. Future Work
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
FOWTs | Floating offshore wind turbines |
CFD | Computational fluid dynamic |
DFBI | Dynamic fluid–body interaction |
VOF | Volume-of-fluid |
ML | Mooring line |
SWL | Still water level |
Df | Fractal dimension |
OP | Original platform |
LVFS | Leaf-vein fractal structure |
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Properties | Unit | Value |
---|---|---|
Total mass | kg | 13,473,000 |
CM height below still water level (SWL) | m | 13.46 |
Inertia moment (Mx) | kg·m2 | 6.827 × 109 |
Inertia moment (My) | kg·m2 | 6.827 × 109 |
Inertia moment (Mz) | kg·m2 | 1.226 × 1010 |
Objects | Total Mass (kg) | CM Below the SWL (m) | Mx (kg·m2) | My (kg·m2) | Mz (kg·m2) |
---|---|---|---|---|---|
OP | 13,473,421 | 13.460 | 6.557 × 109 | 6.557 × 109 | 1.172 × 1010 |
4 L | 12,642,797 | 13.016 | 6.141 × 109 | 6.141 × 109 | 1.096 × 1010 |
6 L | 12,803,742 | 13.098 | 6.221 × 109 | 6.221 × 109 | 1.111 × 1010 |
8 L | 12,982,368 | 13.168 | 6.307 × 109 | 6.307 × 109 | 1.127 × 1010 |
Objects | Total Mass (kg) | CM Below the SWL (m) | Mx (kg·m2) | My (kg·m2) | Mz (kg·m2) |
---|---|---|---|---|---|
OP | 13,473,421 | 13.460 | 6.557 × 109 | 6.557 × 109 | 1.172 × 1010 |
1 m | 12,982,368 | 13.168 | 6.307 × 109 | 6.307 × 109 | 1.127 × 1010 |
2 m | 12,498,270 | 12.936 | 6.066 × 109 | 6.066 × 109 | 1.082 × 1010 |
3 m | 12,009,334 | 12.704 | 5.827 × 109 | 5.827 × 109 | 1.038 × 1010 |
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Zhang, W.; Huang, H.; Liu, Q.; Yan, Y.; Li, C.; Miao, W.; Yue, M.; Zhang, W. Influence of Varying Fractal Characteristics on the Dynamic Response of a Semi-Submersible Floating Wind Turbine Platform. J. Mar. Sci. Eng. 2025, 13, 1708. https://doi.org/10.3390/jmse13091708
Zhang W, Huang H, Liu Q, Yan Y, Li C, Miao W, Yue M, Zhang W. Influence of Varying Fractal Characteristics on the Dynamic Response of a Semi-Submersible Floating Wind Turbine Platform. Journal of Marine Science and Engineering. 2025; 13(9):1708. https://doi.org/10.3390/jmse13091708
Chicago/Turabian StyleZhang, Wanyong, Haoda Huang, Qingsong Liu, Yangtian Yan, Chun Li, Weipao Miao, Minnan Yue, and Wanfu Zhang. 2025. "Influence of Varying Fractal Characteristics on the Dynamic Response of a Semi-Submersible Floating Wind Turbine Platform" Journal of Marine Science and Engineering 13, no. 9: 1708. https://doi.org/10.3390/jmse13091708
APA StyleZhang, W., Huang, H., Liu, Q., Yan, Y., Li, C., Miao, W., Yue, M., & Zhang, W. (2025). Influence of Varying Fractal Characteristics on the Dynamic Response of a Semi-Submersible Floating Wind Turbine Platform. Journal of Marine Science and Engineering, 13(9), 1708. https://doi.org/10.3390/jmse13091708