Numerical investigation of offshore wind turbine combined with wave energy converter

dc.contributor.authorRony, J.S.
dc.contributor.authorSai, K.C.
dc.contributor.authorKarmakar, D.
dc.date.accessioned2026-02-04T12:26:10Z
dc.date.issued2023
dc.description.abstractThe coupled dynamic analysis is performed for three different types of offshore floating platforms combined with a wave energy converter (WEC) mounting a 5-MW NREL (National Renewable Energy Laboratory) wind turbine. The Response Amplitude Operators (RAOs) are analysed for the three concepts of combined wind and wave energy platforms for different wind and wave conditions. The hydrodynamic performance for the three different platforms is conducted considering different load cases. The time domain aero-servo-hydro-elastic tool is used to study the motion responses of the combined system under real operational conditions. The platform’s responses are observed to increase with the increase in the wind speed. In the case of floating hybrid platform, surge responses are minimal for the hybrid spar-tours combination for any load case condition. Minimum surge and sway ensure higher wind power absorption. The study further focuses on the tower base forces and moments to study the impact of wind and waves on the combined floater. Fore-aft shear forces and fore-aft bending moments are higher for the platforms indicating the importance of wind-wave loading. The time domain responses are further used as the transfer function to predict the most probable maximum values of motion amplitude expected to occur during the life-time of the structure which can be used for designing a floating wind turbine (FWT) against overturning in high waves. The long-term models are constructed using various short-term situations expected to occur during the structure’s life-time and weighing them appropriately. The long-term distribution uses North Atlantic wave data, and short-term responses are calculated considering Rayleigh distribution. A brief comparative study of the three combined offshore floaters is performed to understand the structural integrity, power performance and dynamic motions of the floating wind energy platform combined with WECs. © 2023, The Author(s), under exclusive licence to Sociedade Brasileira de Engenharia Naval.
dc.identifier.citationMarine Systems and Ocean Technology, 2023, 18, 46054, pp. 14-44
dc.identifier.issn1679396X
dc.identifier.urihttps://doi.org/10.1007/s40868-023-00127-4
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/21727
dc.publisherSpringer Nature
dc.subjectOffshore oil well production
dc.subjectOffshore wind turbines
dc.subjectShear flow
dc.subjectWave energy conversion
dc.subjectWind
dc.subjectCombined energy
dc.subjectCombined energy platform
dc.subjectCoupled dynamic analysis
dc.subjectFloating wind turbines
dc.subjectLife-times
dc.subjectNumerical investigations
dc.subjectResponse amplitude operator
dc.subjectWave energy
dc.subjectWave energy converters
dc.subjectWind power
dc.titleNumerical investigation of offshore wind turbine combined with wave energy converter

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