Hydroelastic Response to the Effect of Current Loads on Floating Flexible Offshore Platform
Abstract
:1. Introduction
2. Model Definition
3. Method of Solution
Determination of Displacement and Shear Force
4. Numerical Results and Discussion
4.1. Comparison Results
4.2. Hydroelastic Response Analysis via Displacements of Floating Structure
4.3. Effect of Current Speed on Transmission Coefficient
5. Conclusions
- The present result is supported by the existing numerical results published, other calculation results, and experimental datasets available in the literature, and the comparison between the moored and free-edge floating shows that the moored structure provides greater stability than that of the freely floating structure as it deflects more than that of the free one.
- The structural displacements increase for higher values of current speeds, which is due to the higher hydrodynamic loads on the structure in the upstream region.
- As the current speed increases, the transmission coefficients increase because the larger current provides larger hydrodynamic forces, which results in higher displacements that lead to more wave energy passing below the structure. Furthermore, the number of resonating patterns decreases as the wavenumber increases, which is expected as the wave reflection decreases in the upstream region.
- The analysis of the structural displacements and transmission coefficients for different current speeds suggested that the floating flexible structure became more stable for lower values of current speed and higher mooring stiffness.
- Therefore, the present study indicated that the mathematical model will be helpful to develop a three-dimensional analytical model by considering the opposite current to analyse the hydroelastic response and sensitivity analysis of floating flexible structures based on the Timoshenko–Mindlin beam theory.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
BIEM | Boundary Integral Equation Method |
CFD | Computational Fluid Dynamics |
FAST | Fourier Amplitude Sensitivity Test |
FEM-BEM | Finite Element Method-Boundary Element Method |
FOWT | Floating Offshore Wind Turbine |
HDMR | High-Dimensional Model Representation |
MEFEM | Matched Eigenfunction Expansion Method |
VLFS | Very Large Floating Structure |
Ct | Transmission Coefficient |
Cr | Reflection Coefficient |
2D | Two-Dimensions |
3D | Three-Dimensions |
Appendix A. Equation System for Determining the Unknowns
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Model Parameters | Ranges of Values | Units |
---|---|---|
Non-dimensional water depth (h/l) | 0.5 | [-] |
Non-dimensional wavenumber () | 0–14 | [-] |
Non-dimensional thickness () | 0.03 | [-] |
Current speed () | 0.02–1.3 | [m/s] |
Mooring stiffness () | 0.25 | [N/m] |
Water density () | 1025 | [kgm−3] |
Gravitational constant () | 9.8 | [m/s] |
Elastic modulus () | 10–50 | [GPa] |
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Amouzadrad, P.; Mohapatra, S.C.; Guedes Soares, C. Hydroelastic Response to the Effect of Current Loads on Floating Flexible Offshore Platform. J. Mar. Sci. Eng. 2023, 11, 437. https://doi.org/10.3390/jmse11020437
Amouzadrad P, Mohapatra SC, Guedes Soares C. Hydroelastic Response to the Effect of Current Loads on Floating Flexible Offshore Platform. Journal of Marine Science and Engineering. 2023; 11(2):437. https://doi.org/10.3390/jmse11020437
Chicago/Turabian StyleAmouzadrad, Pouria, Sarat Chandra Mohapatra, and Carlos Guedes Soares. 2023. "Hydroelastic Response to the Effect of Current Loads on Floating Flexible Offshore Platform" Journal of Marine Science and Engineering 11, no. 2: 437. https://doi.org/10.3390/jmse11020437
APA StyleAmouzadrad, P., Mohapatra, S. C., & Guedes Soares, C. (2023). Hydroelastic Response to the Effect of Current Loads on Floating Flexible Offshore Platform. Journal of Marine Science and Engineering, 11(2), 437. https://doi.org/10.3390/jmse11020437