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dc.contributor.authorPérez Segarra, Carlos David
dc.contributor.authorLehmkuhl Barba, Oriol
dc.contributor.authorJaramillo Ibarra, Julian Ernesto
dc.contributor.authorColomer Rey, Guillem
dc.contributor.authorOliva Llena, Asensio
dc.contributor.otherUniversitat Politècnica de Catalunya. Departament de Màquines i Motors Tèrmics
dc.date.accessioned2010-11-15T18:57:01Z
dc.date.available2010-11-15T18:57:01Z
dc.date.created2009
dc.date.issued2009
dc.identifier.citationPérez, C. [et al.]. Turbulence modelling and numerical issues: from RANS to DNS and LES. A: Conferência Nacional em Mecânica de Fluidos, Termodinâmica e Energia. "III Conferência Nacional em Mecânica de Fluidos, Termodinâmica e Energia.". Bragança: 2009, p. 15-16.
dc.identifier.isbn9789899626409
dc.identifier.urihttp://hdl.handle.net/2117/10299
dc.description.abstractThe objective of this work is to show possibilities and limitations of different turbulence models from RANS to DNS and LES. Firstly, standard approaches based on time averaging the governing equations (the so called Reynolds Averaged Navier-Stokes equations or RANS models) are presented. Attention is focused on explicit algebraic and eddy-viscosity linear and non-linear two-equation models. Aspects related to forced and natural convection, low-Reynolds number approaches, numerical issues, etc. are shown. A different simulation level is then presented: the Direct Numerical Simulation or DNS approach. This kind of analysis describes the whole range of the turbulent motion scales, from the largest ones (similar to the domain size) to the smallest ones (also called dissipative or Kolmogorov scales), where the fluctuations are damped and turbulent energy is irreversibly converted into internal energy. Aspects related to the discretization of the governing equations and the necessity of preserving some properties of the Navier-Stokes equations are pointed out. Examples are shown with emphasis on the possibilities and limitations of this important approach where no empirical inputs are needed at all. The paper ends with promising turbulence models based on the full simulation of the largest scales of the turbulent flow, while the smaller ones are modelled. This is called Large Eddy Simulation or LES approach. Discussion starts with classical techniques based on modelling the non-linear interactions of the convective operator as a diffusion term. Afterwards, the use of regularization techniques as a large eddy simulation model is discussed. The formulation is based on symmetry-preserving discretization methodology on non-structured and collocated meshes. In this approach, the length of the filter is the only empirical parameter used by the model. Examples of both natural and forced convection in well-known benchmark cases, and also in industrial applications, are presented.
dc.format.extent2 p.
dc.language.isoeng
dc.subjectÀrees temàtiques de la UPC::Enginyeria mecànica::Mecànica de fluids
dc.subject.lcshTurbulence
dc.subject.lcshNavier-Stokes equations
dc.subject.lcshSimulation methods
dc.titleTurbulence modelling and numerical issues: from RANS to DNS and LES
dc.typeConference lecture
dc.subject.lemacTurbulència -- Models matemàtics
dc.subject.lemacEquacions de Navier-Stokes
dc.contributor.groupUniversitat Politècnica de Catalunya. CTTC - Centre Tecnològic de la Transferència de Calor
dc.description.peerreviewedPeer Reviewed
dc.rights.accessRestricted access - publisher's policy
local.identifier.drac2435063
dc.description.versionPostprint (published version)
local.citation.authorPérez, C.; Lehmkuhl, O.; Jaramillo, J.; Colomer, G.; Oliva, A.
local.citation.contributorConferência Nacional em Mecânica de Fluidos, Termodinâmica e Energia
local.citation.pubplaceBragança
local.citation.publicationNameIII Conferência Nacional em Mecânica de Fluidos, Termodinâmica e Energia.
local.citation.startingPage15
local.citation.endingPage16


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