• français
    • English
    English
  • Ouvrir une session
Aide
Voir le document 
  •   Accueil de SAM
  • Dynamique des Fluides (DynFluid)
  • Voir le document
  • Accueil de SAM
  • Dynamique des Fluides (DynFluid)
  • Voir le document
JavaScript is disabled for your browser. Some features of this site may not work without it.

Development and analysis of high-order vorticity confinement schemes

Article dans une revue avec comité de lecture
Auteur
PETROPOULOS, I.
134975 Laboratoire de Dynamique des Fluides [DynFluid]
COSTES, M.
531249 ONERA, Université Paris Saclay (COmUE) [Meudon]
CINNELLA, Paola
134975 Laboratoire de Dynamique des Fluides [DynFluid]

URI
http://hdl.handle.net/10985/18936
DOI
10.1016/j.compfluid.2017.04.011
Date
2017
Journal
Computers & Fluids

Résumé

High-order extensions of the Vorticity Confinement (VC) method are developed for the accurate com- putation of vortical flows, following the VC2 conservative formulation of Steinhoff. First, a high-order formulation of VC is presented for the case of the linear transport equation for decoupled schemes in space and time. A spectral analysis shows that the new nonlinear schemes have improved dispersive and dissipative properties compared to their linear counterparts at all orders of accuracy. For the Euler and Navier–Stokes equations, the original VC method is extended to 3 rd - and 5 th -order of accuracy, with the goal of developing a VC formulation that maintains the vorticity preserving capability of the original 1 st -order method and is suitable for application to high-order numerical simulations. The high-order ex- tensions remain both independent of the choice of baseline numerical scheme and rotationally invariant since they are based on the Laplace operator. Numerical tests validate the increased order of accuracy, vorticity-preserving capability and compatibility of the VC extensions with high-order methods.

Fichier(s) constituant cette publication

Nom:
DYNFLUID_CF_2017_Petropoulos.pdf
Taille:
3.929Mo
Format:
PDF
Description:
Article
Voir/Ouvrir

Cette publication figure dans le(s) laboratoire(s) suivant(s)

  • Dynamique des Fluides (DynFluid)

Documents liés

Visualiser des documents liés par titre, auteur, créateur et sujet.

  • Development of a third-order accurate vorticity confinement scheme 
    Article dans une revue avec comité de lecture
    COSTES, M.; PETROPOULOS, I.; ccCINNELLA, Paola (ELSEVIER, 2016)
    A new 3rd-order Vorticity Confinement scheme is presented as an extension of the original VC2 scheme developed by Steinhofffor the resolution of the fluid dynamic equations. The theoretical developments are explained, and ...
  • Sensitivity of Supersonic ORC Turbine Injector Designs to Fluctuating Operating Conditions 
    Communication avec acte
    BUFI, Elio Antonio; CINNELLA, Paola; MERLE, Xavier; CINNELLA, Paola (ASME, 2015)
    The design of an efficient organic rankine cycle (ORC) expander needs to take properly into account strong real gas effects that may occur in given ranges of operating conditions, which can also be highly variable. In this ...
  • Multi-fidelity optimization strategy for the industrial aerodynamic design of helicopter rotor blades 
    Article dans une revue avec comité de lecture
    LEUSINK, Debbie; ALFANO, David; CINNELLA, Paola (Elsevier, 2015)
    The industrial aerodynamic design of helicopter rotor blades needs to consider the two typical flight conditions of hover and forward flight simultaneously. Here, this multi-objective design problem is tackled by using a ...
  • Numerical Study of Multistage Transcritical Organic Rankine Cycle Axial Turbines 
    Article dans une revue avec comité de lecture
    CINNELLA, Paola; ccSCIACOVELLI, Luca (American Society of Mechanical Engineers, 2014)
    Transonic flows through axial, multi-stage, transcritical ORC turbines, are investigated by using a numerical solver including advanced multiparameter equations of state and a high-order discretization scheme. The working ...
  • Bayesian quantification of thermodynamic uncertainties in dense gas flows 
    Article dans une revue avec comité de lecture
    MERLE, Xavier; CINNELLA, Paola (Elsevier, 2015)
    A Bayesian inference methodology is developed for calibrating complex equations of state used in numerical fluid flow solvers. Precisely, the input parameters of three equations of state commonly used for modeling the ...

Parcourir

Tout SAMLaboratoiresAuteursDates de publicationCampus/InstitutsCe LaboratoireAuteursDates de publicationCampus/Instituts

Lettre Diffuser la Science

Dernière lettreVoir plus

Statistiques de consultation

Publications les plus consultéesStatistiques par paysAuteurs les plus consultés

ÉCOLE NATIONALE SUPERIEURE D'ARTS ET METIERS

  • Contact
  • Mentions légales

ÉCOLE NATIONALE SUPERIEURE D'ARTS ET METIERS

  • Contact
  • Mentions légales