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Numerical analysis of 3D hydrodynamics and performance of an array of oscillating water column wave energy converters integrated into a vertical breakwater

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dc.contributor.author Didier, E. pt_BR
dc.contributor.author Teixeira, P. pt_BR
dc.date.accessioned 2024-04-03T15:13:05Z pt_BR
dc.date.accessioned 2024-05-29T14:51:57Z
dc.date.available 2024-04-03T15:13:05Z pt_BR
dc.date.available 2024-05-29T14:51:57Z
dc.date.issued 2024-05 pt_BR
dc.identifier.citation https://doi.org/10.1016/j.renene.2024.120297 pt_BR
dc.identifier.uri http://repositorio.lnec.pt:8080/jspui/handle/123456789/1017254
dc.description.abstract Performance and hydrodynamics of an array of Oscillating Water Column (OWC) Wave Energy Converter (WEC) integrated into a vertical breakwater is studied. The FLUENT® software, in which the numerical model is based on the Reynolds-Averaged Navier-Stokes equations and the Volume of Fluid method for free surface flow modeling, is used in a 3D numerical wave tank. Three vertical breakwater configurations subject to the action of incident regular waves with periods from 6 to 12 s are studied: normal breakwater, with vertical walls parallel to the direction along the breakwater length; and two novel breakwater geometries, partially and fully convergent breakwaters, whose converging vertical walls are inclined θ in relation to this direction. Different spacing S from 0 to 20 m between the array of OWC devices and two converging wall angles θ, 30 and 45°, are investigated. Firstly, analysis of the influence of S for the normal breakwater shows that the vertical wall concentrates naturally a higher quantity of the incident wave energy inside OWC chamber devices and, consequently, increases their efficiencies. This effect is intensified as the spacing S increases. Secondly, analyses of the partially and fully convergent breakwaters allow concluding that these novel geometries, which direct an amount of incident wave energy into the OWC chamber, increase significantly the efficiency of the array of the OWC devices at the range of the wave periods. The highest performance of OWC device is obtained by the fully convergent breakwater with S = 20 m and θ = 45°, once 10 OWC devices inserted in a breakwater 300 m long have the same efficiency of 20 OWC devices inserted into the normal breakwater. pt_BR
dc.language.iso eng pt_BR
dc.publisher Elsevier pt_BR
dc.rights restrictedAccess pt_BR
dc.subject Array of wave energy converters pt_BR
dc.subject Oscillating water column pt_BR
dc.subject Vertical breakwater pt_BR
dc.subject Efficiency pt_BR
dc.subject 3D RANS-VoF numerical wave tank pt_BR
dc.title Numerical analysis of 3D hydrodynamics and performance of an array of oscillating water column wave energy converters integrated into a vertical breakwater pt_BR
dc.type workingPaper pt_BR
dc.description.pages 20p. pt_BR
dc.description.volume Vol. 225 (120297) pt_BR
dc.description.sector DHA/NPE pt_BR
dc.description.magazine Revista Renewable Energy pt_BR
dc.contributor.peer-reviewed SIM pt_BR
dc.contributor.academicresearchers SIM pt_BR
dc.contributor.arquivo NAO pt_BR


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