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dc.contributor.authorAguilar Bedoya, Jonathan-
dc.contributor.authorRubio Clemente, Ainhoa-
dc.contributor.authorChica Arrieta, Edwin Lenin-
dc.contributor.authorVelásquez García, Laura Isabel-
dc.date.accessioned2024-09-09T19:34:37Z-
dc.date.available2024-09-09T19:34:37Z-
dc.date.issued2019-
dc.identifier.citationJ. Aguilar, A. Rubio-Clemente, L. Velasquez, and E. Chica, “Design and Optimization of a Multi-Element Hydrofoil for a Horizontal-Axis Hydrokinetic Turbine,” Energies, vol. 12, no. 24, 2019, doi: 10.3390/en12244679.spa
dc.identifier.urihttps://hdl.handle.net/10495/41968-
dc.description.abstractABSTRACT: Hydrokinetic turbines are devices that harness the power from moving water of rivers, canals, and artificial currents without the construction of a dam. The design optimization of the rotor is the most important stage to maximize the power production. The rotor is designed to convert the kinetic energy of the water current into mechanical rotation energy, which is subsequently converted into electrical energy by an electric generator. The rotor blades are critical components that have a large impact on the performance of the turbine. These elements are designed from traditional hydrodynamic profiles (hydrofoils), to directly interact with the water current. Operational effectiveness of the hydrokinetic turbines depends on their performance, which is measured by using the ratio between the lift coefficient (CL) and the drag coefficient (CD) of the selected hydrofoil. High lift forces at low flow rates are required in the design of the blades; therefore, the use of multi-element hydrofoils is commonly regarded as an adequate solution to achieve this goal. In this study, 2D CFD simulations and multi-objective optimization methodology based on surrogate modelling were conducted to design an appropriate multi-element hydrofoil to be used in a horizontal-axis hydrokinetic turbine. The Eppler 420 hydrofoil was utilized for the design of the multi-element hydrofoil composed of a main element and a flap. The multi-element design selected as the optimal one had a gap of 2.825% of the chord length (C1), an overlap of 8.52 %C1, a flap deflection angle (δ) of 19.765◦ , a flap chord length (C2) of 42.471 %C1, and an angle of attack (α) of –4◦spa
dc.format.extent18 páginasspa
dc.format.mimetypeapplication/pdfspa
dc.language.isoengspa
dc.publisherMDPIspa
dc.type.hasversioninfo:eu-repo/semantics/publishedVersionspa
dc.rightsinfo:eu-repo/semantics/openAccessspa
dc.rights.urihttp://creativecommons.org/licenses/by/2.5/co/*
dc.titleDesign and Optimization of a Multi-Element Hydrofoil for a Horizontal-Axis Hydrokinetic Turbinespa
dc.typeinfo:eu-repo/semantics/articlespa
dc.publisher.groupGrupo de Energía Alternativaspa
dc.identifier.doi10.3390/en12244679-
oaire.versionhttp://purl.org/coar/version/c_970fb48d4fbd8a85spa
dc.rights.accessrightshttp://purl.org/coar/access_right/c_abf2spa
dc.identifier.eissn1996-1073-
oaire.citationtitleEnergiesspa
oaire.citationstartpage1spa
oaire.citationendpage18spa
oaire.citationvolume12spa
oaire.citationissue24spa
dc.rights.creativecommonshttps://creativecommons.org/licenses/by/4.0/spa
dc.publisher.placeBasilea, Suizaspa
oaire.fundingstreamPrograma Colombia Científicaspa
dc.type.coarhttp://purl.org/coar/resource_type/c_2df8fbb1spa
dc.type.redcolhttps://purl.org/redcol/resource_type/ARTspa
dc.type.localArtículo de investigaciónspa
dc.subject.unescoOptimización-
dc.subject.unescoOptimization-
dc.subject.agrovocEnergía hidroeléctrica-
dc.subject.agrovocHydroelectric power-
dc.subject.agrovocEnergía renovable-
dc.subject.agrovocRenewable energy-
dc.subject.agrovocurihttp://aims.fao.org/aos/agrovoc/c_25612-
dc.subject.agrovocurihttp://aims.fao.org/aos/agrovoc/c_25719-
dc.subject.unescourihttp://vocabularies.unesco.org/thesaurus/concept6659-
dc.description.researchgroupidCOL0008058spa
oaire.awardnumberFP44842-218-2018spa
dc.relation.ispartofjournalabbrevEnergiesspa
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