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dc.contributor.authorFitzgerald, Breiffnien
dc.contributor.authorBasu, Biswajiten
dc.contributor.authorSoodhalter, Kirken
dc.date.accessioned2022-08-30T09:21:02Z
dc.date.available2022-08-30T09:21:02Z
dc.date.issued2022en
dc.date.submitted2022en
dc.identifier.citationSudipta Lal Basu, Kirk Soodhalter, Breiffni Fitzgerald, and Biswajit Basu, Flow in a large wind field with multiple actuators in the presence of constant vorticity, Physics of Fluids, 34, 10, 2022, 103603, 1-10en
dc.identifier.otherYen
dc.descriptionPUBLISHEDen
dc.description.abstractStudy of wind farms is an area of active research. Researchers have proposed simplified wind farm models which define the wake structure in a wind farm and how they affect the performance of the wind turbines. Interestingly these models do not take into account an important aspect of fluid flow i.e. the fluid-structure interaction (FSI) between the turbines and the wind, which has an important role to play. This motivated researchers to implement numerical analysis tools to model the geometry of the wind turbines in computational fluid dynamics (CFD) based models of a wind farm in order to better understand the wake structure and study the performance of the wind farms. But, modelling the complex geometry of the blades and the turbines makes these models computationally expensive. <p>In this paper, we propose an FSI methdology which can simplify the blade resolving CFD models and eliminate the requirement for modelling these complex geometries during preliminary engineering phase. As an example, we present simulations of up to three back-to-back wind turbines and compare the results with those obtained from wind engineering software, FLORIS. The proposed methodology demonstrates how the approach can be used to develop a relatively less computationally expensive wind farm model. The approach formulated in this paper follows an intermediate way between the analytical wind farm models and CFD models by introducing modifications to one of the most basic wind farm models (Jensen's model) and using it to develop a simplified CFD model using the Decomposed Immersed Interface Method strategy.en
dc.format.extent103603, 1-10en
dc.language.isoenen
dc.relation.ispartofseriesPhysics of Fluidsen
dc.relation.ispartofseries34en
dc.relation.ispartofseries10en
dc.rightsYen
dc.titleFlow in a large wind field with multiple actuators in the presence of constant vorticityen
dc.typeJournal Articleen
dc.type.supercollectionscholarly_publicationsen
dc.type.supercollectionrefereed_publicationsen
dc.identifier.peoplefinderurlhttp://people.tcd.ie/fitzgeb7en
dc.identifier.peoplefinderurlhttp://people.tcd.ie/soodhalken
dc.identifier.peoplefinderurlhttp://people.tcd.ie/basuben
dc.identifier.rssinternalid245404en
dc.identifier.doihttps://doi.org/10.1063/5.0104902en
dc.rights.ecaccessrightsopenAccess
dc.subject.TCDThemeSmart & Sustainable Planeten
dc.subject.TCDTagAerodynamicsen
dc.subject.TCDTagFLUID FLOWen
dc.subject.TCDTagFluid dynamicsen
dc.subject.TCDTagWINDen
dc.subject.TCDTagWind Energy and Wind Turbinesen
dc.subject.TCDTagWind poweren
dc.subject.TCDTagWind, Wind Energy Engineeringen
dc.subject.TCDTagwind farmen
dc.identifier.rssurihttps://doi.org/10.1063/5.0104902en
dc.identifier.orcid_id0000-0002-5278-6696en
dc.status.accessibleNen
dc.identifier.urihttp://hdl.handle.net/2262/101097


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