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dc.creatorJames S.C.spa
dc.creatorJohnson E.L.spa
dc.creatorBarco J.spa
dc.creatorRoberts J.D.spa
dc.date.accessioned2017-12-19T19:36:48Z
dc.date.available2017-12-19T19:36:48Z
dc.date.created2017
dc.identifier.issn9601481
dc.identifier.urihttp://hdl.handle.net/11407/4331
dc.description.abstractIncreasing interest in power production from ocean, tidal, and river currents has led to significant efforts to maximize energy conversion through optimal design and siting and to minimize effects on the environment. Turbine-based, current-energy-converter (CEC) technologies remove energy from current-driven systems and in the process generate distinct wakes, which can interact with other CEC devices and can alter flow regimes, sediment dynamics, and water quality. This work introduces Sandia National Laboratories-Environmental Fluid Dynamics Code CEC module and verifies it against a two-dimensional analytical solution for power generation and hydrodynamic response of flow through a CEC tidal fence. With a two-dimensional model that accurately reflects an analytical solution, the effort was extended to three-dimensional models of three different laboratory-flume experiments that measured the impacts of CEC devices on flow. Both flow and turbulence model parameters were then calibrated against wake characteristics and turbulence measurements. This is the first time that turbulence parameter values have been specified for CEC devices. Measurements and simulations compare favorably and demonstrate the utility and accuracy of this numerical approach for simulating the impacts of CEC devices on the flow field. The model can be extended to future siting and analyses of CEC arrays in complex domains. © 2017 Elsevier Ltd.eng
dc.language.isoeng
dc.publisherElsevier Ltdspa
dc.relation.isversionofhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85024840209&doi=10.1016%2fj.renene.2017.07.020&partnerID=40&md5=76e6cb049b817e41eff80a2064fc21a2spa
dc.sourceScopusspa
dc.titleSimulating current-energy converters: SNL-EFDC model development, verification, and parameter estimationspa
dc.typeArticle in Presseng
dc.rights.accessrightsinfo:eu-repo/semantics/restrictedAccess
dc.contributor.affiliationJames, S.C., Baylor University, Departments of Geosciences and Mechanical Engineering, One Bear Place #97354, Waco, TX, USAspa
dc.contributor.affiliationJohnson, E.L., Montana State University, Department of Mechanical and Industrial Engineering, 220 Roberts Hall, PO Box 173800, Bozeman, MT, USAspa
dc.contributor.affiliationBarco, J., Facultad de Ingeniería, Universidad de Medellín, Carrera 87 N 30-65, Medellín, Colombiaspa
dc.contributor.affiliationRoberts, J.D., Sandia National Laboratories, Water Power Technologies Department, 1515 Eubank SE, MS 1124, Albuquerque, NM, USAspa
dc.identifier.doi10.1016/j.renene.2017.07.020
dc.subject.keywordCurrent-energy conversioneng
dc.subject.keywordMarine renewable energyeng
dc.subject.keywordNumerical modelingeng
dc.subject.keywordSNL-EFDCeng
dc.subject.keywordEnergy conversioneng
dc.subject.keywordFluid dynamicseng
dc.subject.keywordNumerical modelseng
dc.subject.keywordOcean currentseng
dc.subject.keywordTidal powereng
dc.subject.keywordTurbulence modelseng
dc.subject.keywordWakeseng
dc.subject.keywordWater qualityeng
dc.subject.keywordCurrent energyeng
dc.subject.keywordEnvironmental fluid dynamics codeeng
dc.subject.keywordMarine renewable energyeng
dc.subject.keywordSandia National Laboratorieseng
dc.subject.keywordSNL-EFDCeng
dc.subject.keywordThree-dimensional modeleng
dc.subject.keywordTurbulence measurementseng
dc.subject.keywordTurbulence parameterseng
dc.subject.keywordParameter estimationeng
dc.publisher.facultyFacultad de Ingenieríasspa
dc.abstractIncreasing interest in power production from ocean, tidal, and river currents has led to significant efforts to maximize energy conversion through optimal design and siting and to minimize effects on the environment. Turbine-based, current-energy-converter (CEC) technologies remove energy from current-driven systems and in the process generate distinct wakes, which can interact with other CEC devices and can alter flow regimes, sediment dynamics, and water quality. This work introduces Sandia National Laboratories-Environmental Fluid Dynamics Code CEC module and verifies it against a two-dimensional analytical solution for power generation and hydrodynamic response of flow through a CEC tidal fence. With a two-dimensional model that accurately reflects an analytical solution, the effort was extended to three-dimensional models of three different laboratory-flume experiments that measured the impacts of CEC devices on flow. Both flow and turbulence model parameters were then calibrated against wake characteristics and turbulence measurements. This is the first time that turbulence parameter values have been specified for CEC devices. Measurements and simulations compare favorably and demonstrate the utility and accuracy of this numerical approach for simulating the impacts of CEC devices on the flow field. The model can be extended to future siting and analyses of CEC arrays in complex domains. © 2017 Elsevier Ltd.eng
dc.creator.affiliationBaylor University, Departments of Geosciences and Mechanical Engineering, One Bear Place #97354, Waco, TX, USAspa
dc.creator.affiliationMontana State University, Department of Mechanical and Industrial Engineering, 220 Roberts Hall, PO Box 173800, Bozeman, MT, USAspa
dc.creator.affiliationFacultad de Ingeniería, Universidad de Medellín, Carrera 87 N 30-65, Medellín, Colombiaspa
dc.creator.affiliationSandia National Laboratories, Water Power Technologies Department, 1515 Eubank SE, MS 1124, Albuquerque, NM, USAspa
dc.relation.ispartofesRenewable Energyspa
dc.type.versioninfo:eu-repo/semantics/publishedVersion
dc.type.driverinfo:eu-repo/semantics/other
dc.identifier.reponamereponame:Repositorio Institucional Universidad de Medellínspa
dc.identifier.instnameinstname:Universidad de Medellínspa


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