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Hydrodynamic investigation on an OWC wave energy converter integrated into an OWT monopile

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posted on 2025-08-01, 09:46 authored by Y Zhou, D Ning, W Shi, L Johanning, D Liang
Multi-functional platform is a promising way to enhance the economic power production from multiple renewable energy sources. This paper investigates numerically and experimentally the hydrodynamic performance of an oscillating water column (OWC) wave energy converter (WEC), integrated into a monopile-mounted offshore wind turbine (OWT). Based on linear potential flow theory, a 3D time-domain numerical model was developed, based on the higher-order boundary element method, to investigate the coupled hydrodynamic response of a cylindrical-type OWC device. A nonlinear pneumatic model was utilized to simulate the turbine damping. Experiments on the integrated system were carried out in a wave flume at Dalian University of Technology. The numerical results agree well with the experimental studies, including i) the surface elevation and air pressure inside the chamber, ii) wave pressure on the OWT monopile and iii) hydrodynamic efficiency. Furthermore, the effects of the OWC damping and wave steepness on the OWC-OWT system were investigated. It was found that the introduction of the OWC can significantly reduce the horizontal force and overturning moment on the OWT monopile, and that the wave steepness has a significant influence on the OWC efficiency, especially at resonance.

Funding

2018YFB151905

51679036

51761135011

EP/R007519/1

Engineering and Physical Sciences Research Council (EPSRC)

National Key R&D Program of China

National Natural Science Foundation of China

History

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Rights

© 2020 Published by Elsevier B.V. Open access under a Creative Commons license

Notes

This is the author accepted manuscript. The final version is available from Elsevier via the DOI in this record

Journal

Coastal Engineering

Publisher

Elsevier

Version

  • Accepted Manuscript

Language

en

FCD date

2020-06-15T15:35:22Z

FOA date

2020-06-15T15:38:05Z

Citation

Article 103731

Department

  • Engineering

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