In the recent years an increasing interest has been devoted to the study of the feasibility and relevance in combining wave energy converters with coastal structures. The present work addresses the evaluation by numerical simulation of the extreme loads acting on a flap-type energy converter. To this aim the SPH model can be an optimal candidate: its Lagrangian character allows for an accurate description of the extreme breaking wave acting on the structure while its meshless feature permits an easy interaction of the fluid with moving rigid bodies such as the rotating flap converter. As a first approach, extreme wave characteristics have been computed using statistical offshore wave elevation data. Then, the wave has been generated in a 2D numerical wave tank through a piston wave- maker. Loads on the flaps are computed and analysed considering a moving or fixed flap. A sensitivity analysis of the results has been performed considering different impact dynamics (e.g. wave impact occurring before or after wave breaking). The most critical cases found in the 2D analysis have been reproduced with a fully 3D SPH model.

Numerical prediction of extreme loads on flap-type energy converters

Marrone S;Colagrossi A;
2015

Abstract

In the recent years an increasing interest has been devoted to the study of the feasibility and relevance in combining wave energy converters with coastal structures. The present work addresses the evaluation by numerical simulation of the extreme loads acting on a flap-type energy converter. To this aim the SPH model can be an optimal candidate: its Lagrangian character allows for an accurate description of the extreme breaking wave acting on the structure while its meshless feature permits an easy interaction of the fluid with moving rigid bodies such as the rotating flap converter. As a first approach, extreme wave characteristics have been computed using statistical offshore wave elevation data. Then, the wave has been generated in a 2D numerical wave tank through a piston wave- maker. Loads on the flaps are computed and analysed considering a moving or fixed flap. A sensitivity analysis of the results has been performed considering different impact dynamics (e.g. wave impact occurring before or after wave breaking). The most critical cases found in the 2D analysis have been reproduced with a fully 3D SPH model.
2015
Istituto di iNgegneria del Mare - INM (ex INSEAN)
Inglese
Francesco Salvatore, Riccardo Broglia and Roberto Muscari.
MARINE 2015 Computational Methods in Marine Engineering VI
VI International Conference on Computational Methods in Marine Engineering MARINE 2015, ECCOMAS Thematic conference,
1116
1127
978-84-943928-6-3
http://www.scopus.com/inward/record.url?eid=2-s2.0-84938861211&partnerID=q2rCbXpz
Sì, ma tipo non specificato
15-17 June 2015,
Rome
SPH
Wave energy converters
Wave impacts
2
none
Marrone S.; Colagrossi A.; Baudry V.; Le Touze D.; Rossi E.
273
info:eu-repo/semantics/conferenceObject
04 Contributo in convegno::04.01 Contributo in Atti di convegno
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/297197
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