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Journal article ยท Conference paper

Floating substructure flexibility of large-volume 10MW offshore wind turbine platforms in dynamic calculations

From

Department of Wind Energy, Technical University of Denmark1

Fluid Mechanics, Department of Wind Energy, Technical University of Denmark2

Wind turbine loads & control, Department of Wind Energy, Technical University of Denmark3

Designing floating substructures for the next generation of 10MW and larger wind turbines has introduced new challenges in capturing relevant physical effects in dynamic simulation tools. In achieving technically and economically optimal floating substructures, structural flexibility may increase to the extent that it becomes relevant to include in addition to the standard rigid body substructure modes which are typically described through linear radiation-diffraction theory.

This paper describes a method for the inclusion of substructural flexibility in aero-hydro-servo-elastic dynamic simulations for large-volume substructures, including wave-structure interactions, to form the basis of deriving sectional loads and stresses within the substructure. The method is applied to a case study to illustrate the implementation and relevance.

It is found that the flexible mode is significantly excited in an extreme event, indicating an increase in predicted substructure internal loads.

Language: English
Publisher: IOP Publishing
Year: 2016
Pages: 082024
Proceedings: The Science of Making Torque from Wind 2016
ISSN: 17426596 and 17426588
Types: Journal article and Conference paper
DOI: 10.1088/1742-6596/753/8/082024
ORCIDs: Borg, Michael , Hansen, Anders Melchior and Bredmose, Henrik

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