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Advances in fluid mechanics XII

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dc.contributor.editor Hernandez, S.
dc.contributor.editor Skerget, L.
dc.contributor.editor Ravnik, J.
dc.date.accessioned 2021-11-04T14:00:46Z
dc.date.available 2021-11-04T14:00:46Z
dc.date.copyright 2019 en_US
dc.date.issued 2021-11-04
dc.identifier.isbn 9781784662882 en_US
dc.identifier.uri http://hdl.handle.net/10725/13068
dc.description.abstract Previous Scale-Resolving Simulation studies of flow over urban-like obstacles uses Large Eddy Simulation and course grids to reduce computational cost. However, the coarser the mesh the more reliance on the subgrid scale model to accurately account for scales associated with high wavenumbers. Furthermore, when high-resolution simulations are of importance, such as the transport of urban contaminants, mesh refinement becomes necessary. Often clustering of mesh cells produce errors at grid-refinement interfaces, mainly on the fine side of the mesh when it is located upstream of the coarse one. Three scale-resolving turbulence models, the One-Equation Scale-Adaptive Simulation (One-Eq.-SAS), the Shear Stress Transport-Improved Delayed Detached Eddy Simulation (SST-IDDES), and the Algebraic Wall-Modelled Large Eddy Simulation (WMLES) models are utilized to assess their effect on the accuracy of the results when applied on both coarse and mesh-refined grids. The selection of these models was first based on the computational cost where the WMLES is the cheapest to solve since it involves no partial differential equation, while the SST-IDDES model is computationally the most expensive. Simulations are carried out on a relevant and complex test case of flow through a periodic array of cubes. The results reveal that models that do not inherent grid scale parameters in their formulation perform best in flows with global instabilities.
dc.language.iso en en_US
dc.publisher WIT Press en_US
dc.relation.ispartofseries WIT transactions on engineering sciences
dc.subject Fluid mechanics -- Congresses en_US
dc.title Advances in fluid mechanics XII en_US
dc.type Book / Chapter of a Book en_US
dc.author.school SOE en_US
dc.author.idnumber 201705688 en_US
dc.author.department Industrial And Mechanical Engineering en_US
dc.description.physdesc 304 pages : illustrations (some color) en_US
dc.publication.place Southampton en_US
dc.keywords Scale-Resolving Simulation en_US
dc.keywords Scale-Adaptive Simulation en_US
dc.keywords One-Equation model en_US
dc.keywords Bluff body simulation en_US
dc.description.bibliographiccitations Includes bibliographical references. en_US
dc.identifier.doi https://doi.org/10.2495/AFM180161 en_US
dc.identifier.ctation ElKhoury, M., & ECheikh, A. (2019). Scale-resolving simulation of flow through a periodic array of cubes (pp. 161-172). In Advances in Fluid Mechanics XII. Southampton: WIT Press. en_US
dc.chapter.author ElKhoury, Michel
dc.chapter.author ElCheik, Amna
dc.author.email amne.elcheikh@lau.edu.lb en_US
dc.chapter.pages 161-172 en_US
dc.chapter.title Scale-resolving simulation of flow through a periodic array of cubes en_US
dc.identifier.tou http://libraries.lau.edu.lb/research/laur/terms-of-use/articles.php en_US
dc.identifier.url https://www.witpress.com/elibrary/wit-transactions-on-engineering-sciences/120/36837 en_US
dc.note Containing papers from the 12th International Conference on Advances in Fluid Mechanics, this book covers a wide range of topics including basic formulations and their computer modelling as well as the relationship between experimental and analytical results. The emphasis is on new applications and research currently in progress.
dc.publication.date 2019 en_US
dc.author.affiliation Lebanese American University en_US
dc.relation.numberofseries v. 120
dc.orcid.id2 https://orcid.org/0000-0003-0459-8145 en_US


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