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dc.contributor.authorKisacik, Dogan
dc.contributor.authorStratigaki, Vasiliki
dc.contributor.authorWu, Minghao
dc.contributor.authorCappietti, Lorenzo
dc.contributor.authorSimonetti, Irene
dc.contributor.authorTroch, Peter
dc.contributor.authorCabrera Crespo, Alejandro Jacobo 
dc.contributor.authorAltomare, Corrado
dc.contributor.authorDomínguez Alonso, José Manuel 
dc.contributor.authorHall, Matthew
dc.contributor.authorGómez Gesteira, Ramón
dc.contributor.authorCanelas, Ricardo Birjukovs
dc.contributor.authorStansby, Peter
dc.date.accessioned2021-10-19T12:35:44Z
dc.date.available2021-10-19T12:35:44Z
dc.date.issued2020-04-01
dc.identifier.citationWater, 12(4): 992 (2020)spa
dc.identifier.issn20734441
dc.identifier.urihttp://hdl.handle.net/11093/2591
dc.description.abstractFloating oscillating water column (OWC) type wave energy converters (WECs), compared to fixed OWC WECs that are installed near the coastline, can be more effective as they are subject to offshore waves before the occurrence of wave dissipation at a nearshore location. The performance of floating OWC WECs has been widely studied using both numerical and experimental methods. However, due to the complexity of fluid–structure interaction of floating OWC WECs, most of the available studies focus on 2D problems with WEC models of limited degrees-of-freedom (DOF) of motion, while 3D mooring effects and multiple-DOF OWC WECs have not been extensively investigated yet under 2D and 3D wave conditions. Therefore, in order to gain a deeper insight into these problems, the present study focuses on wave flume experiments to investigate the motion and mooring performance of a scaled floating OWC WEC model under 2D wave conditions. As a preparatory phase for the present MaRINET2 EsflOWC (efficiency and survivability of floating OWC) project completed at the end of 2017, experiments were also carried out in advance in the large wave flume of Ghent University. The following data were obtained during these experimental campaigns: multiple-DOF OWC WEC motions, mooring line tensions, free surface elevations throughout the wave flume, close to and inside the OWC WEC, change in the air pressure inside the OWC WEC chamber and velocity of the airflow through the vent on top of the model. The tested wave conditions mostly include nonlinear intermediate regular waves. The data obtained at the wave flume of Ghent University, together with the data from the EsflOWC tests at the wave flume of LABIMA, University of Florence, provide a database for numerical validation of research on floating OWC WECs and floating OWC WEC farms or arrays used by researchers worldwide.eng
dc.description.sponsorshipEuropean Commission | Ref. n. 731084spa
dc.description.sponsorshipEuropean Cooperation in Science & Technology | Ref. COST Action CA17105 WECANetspa
dc.language.isoengspa
dc.publisherWaterspa
dc.rightsAttribution 4.0 International
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/
dc.titleEfficiency and survivability of a floating oscillating water column wave energy converter moored to the seabed: an overview of the EsflOWC MaRINET2 databaseeng
dc.typearticlespa
dc.rights.accessRightsopenAccessspa
dc.relation.projectIDEU/H2020/731084spa
dc.identifier.doi10.3390/w12040992
dc.identifier.editorhttps://www.mdpi.com/2073-4441/12/4/992spa
dc.publisher.departamentoFísica aplicadaspa
dc.publisher.grupoinvestigacionEphysLabspa
dc.subject.unesco3301.12 Hidrodinámicaspa
dc.subject.unesco2510 Oceanografíaspa
dc.subject.unesco3322.05 Fuentes no Convencionales de Energíaspa
dc.date.updated2021-10-19T10:58:04Z
dc.computerCitationpub_title=Water|volume=12|journal_number=4|start_pag=992|end_pag=spa


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    Attribution 4.0 International
    Except where otherwise noted, this item's license is described as Attribution 4.0 International