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Numerical Analysis of Nonlinear Hydrodynamic Performance in an Innovative Composite Monopile Foundation for Offshore Wind Turbines Using a Fully Nonlinear Potential Flow Model

Author

Listed:
  • Shuang Liang

    (Shanghai Investigation, Design and Research Institute Co., Ltd., Shanghai 200335, China
    Department of Geotechnical Engineering, Tongji University, Shanghai 200092, China)

  • Lin Lin

    (Shanghai Investigation, Design and Research Institute Co., Ltd., Shanghai 200335, China)

  • Fayun Liang

    (Department of Geotechnical Engineering, Tongji University, Shanghai 200092, China)

  • Panpan Shen

    (Shanghai Investigation, Design and Research Institute Co., Ltd., Shanghai 200335, China)

  • Shilun Zhao

    (Shanghai Investigation, Design and Research Institute Co., Ltd., Shanghai 200335, China)

Abstract

Offshore wind turbines serve as critical infrastructure components in marine renewable energy systems, enabling sustainable energy extraction within offshore engineering frameworks. Monopile foundations for offshore wind turbines in deep-water environments are subjected to strong nonlinear wave actions. This study introduces a novel composite monopile foundation specifically designed for deep-sea applications, with its fully nonlinear hydrodynamic performance systematically investigated using potential flow theory. The novel hybrid monopile incorporates a concrete-filled double-skin steel tubular (CFDST) configuration to reduce pile diameter at water level. In the numerical model, the higher-order boundary element method (HOBEM) is implemented to resolve boundary value problems at each temporal iteration. Following numerical validation, nonlinear wave loading and run-up characteristics for the CFDST hybrid structure are quantified, while the limitations of Morison’s equation for large-scale structures under strongly nonlinear wave conditions are concurrently assessed. Results indicate that CFDST implementation effectively attenuates both nonlinear hydrodynamic forces and wave run-up amplitudes, enabling safer and more economical design approaches for deep-water offshore wind turbine foundations.

Suggested Citation

  • Shuang Liang & Lin Lin & Fayun Liang & Panpan Shen & Shilun Zhao, 2025. "Numerical Analysis of Nonlinear Hydrodynamic Performance in an Innovative Composite Monopile Foundation for Offshore Wind Turbines Using a Fully Nonlinear Potential Flow Model," Sustainability, MDPI, vol. 17(11), pages 1-19, May.
  • Handle: RePEc:gam:jsusta:v:17:y:2025:i:11:p:4769-:d:1661956
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