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dc.contributor.authorEl Rahi, J.pt_BR
dc.contributor.authorReis, R.pt_BR
dc.contributor.authorMartinez, E.pt_BR
dc.contributor.authorTagliafierro, B.pt_BR
dc.contributor.authorDominguez, J.M.pt_BR
dc.contributor.authorCrespo, A.J.C.pt_BR
dc.contributor.authorStratigaki, V.pt_BR
dc.contributor.authorSuzuki, T.pt_BR
dc.contributor.authorTroch, P.pt_BR
dc.date.accessioned2024-07-19T14:01:09Zpt_BR
dc.date.accessioned2024-10-08T10:04:23Z-
dc.date.available2024-07-19T14:01:09Zpt_BR
dc.date.available2024-10-08T10:04:23Z-
dc.date.issued2024-05-07pt_BR
dc.identifier.citationhttps://doi.org/10.59490/coastlab.2024.788pt_BR
dc.identifier.urihttp://dspace2.lnec.pt:8080/jspui/handle/123456789/1017524pt_BR
dc.identifier.urihttp://repositorio.lnec.pt:8080/jspui/handle/123456789/1017524-
dc.description.abstractAquatic vegetation in the littoral zone, particularly seagrass, is gaining increasing recognition for its net positive impact on the hosting environment. This recognition is rooted in its capacity to absorb wave energy, regulate water flow, and manage nutrient levels, sedimentation and accretion. Thus, there is a growing interest in integrating seagrass as a key component of a comprehensive climate-conscious strategy (Ondiviela et al., 2014). An effective approach to quantify the positive potential of seagrasses in altering coastal wave dynamics is by using numerical models. These numerical models operate at various spatio- temporal scales, ranging from large domains and multiple years to just a few regular waves in high resolution CFD numerical simulations. Zeller et al. (2014) classified these models, operating at different scales into three categories, each addressing the wave-vegetation interaction at a distinct scale: (1) blade scale, (2) meadow scale, and (3) ecosystem scale. The aim of the present study is to investigate the interaction between waves and vegetation at the blade scale. The primary objectives are two: first, to introduce a direct numerical technique that involves a two-way coupling between a fluid solver and a structural solver, and second, to present novel experimental data for a single flexible cylinder (Reis, 2022) serving as validation for the present (and future) numerical model(s).pt_BR
dc.language.isoengpt_BR
dc.publisherCoastLab24pt_BR
dc.rightsopenAccesspt_BR
dc.subjectWave-vegetation interactionpt_BR
dc.subjectFlexible vegetationpt_BR
dc.subjectDirect numerical modellpt_BR
dc.subjectDualSPHysicspt_BR
dc.titleExploring Wave-Vegetation Interaction At Blade Scale: A Comprehensive Analysis Of A Flexible Cylinder Through Experimental Data And A Direct Numerical Simulationpt_BR
dc.typeconferenceObjectpt_BR
dc.description.sectorDHA/NPEpt_BR
dc.contributor.peer-reviewedNAOpt_BR
dc.contributor.academicresearchersNAOpt_BR
dc.contributor.arquivoSIMpt_BR
Appears in Collections:DHA/NPE - Comunicações a congressos e artigos de revista

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