Academic literature on the topic 'Dynamique des fluides – Simulation, Méthodes de'
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Journal articles on the topic "Dynamique des fluides – Simulation, Méthodes de"
Youcef, Ahmed, and Rachid Saim. "Simulation numérique du comportement dynamique et thermique de deux fluides en contre courant." Journal of Renewable Energies 20, no. 1 (October 12, 2023): 69–80. http://dx.doi.org/10.54966/jreen.v20i1.610.
Full textKherchouche, Abdellah, Houssam Habibi, Fouzia Ouarhlent, and Azeddine Soudani. "Simulation numérique d'un écoulement turbulent à masse volumique variable." Journal of Renewable Energies 22, no. 2 (October 6, 2023): 205–15. http://dx.doi.org/10.54966/jreen.v22i2.738.
Full textMathian, Hélène, and Lena Sanders. "Numérique versus symbolique." Revue Internationale de Géomatique 31, no. 1-2 (January 2022): 21–45. http://dx.doi.org/10.3166/rig31.21-45.
Full textPeruzzetto, Marc, Gilles Grandjean, Anne Mangeney, Clara Levy, Yannick Thiery, Benoit Vittecoq, François Bouchut, Fabrice R. Fontaine, and Jean-Christophe Komorowski. "Simulation des écoulements gravitaires avec les modèles d’écoulement en couche mince : état de l’art et exemple d’application aux coulées de débris de la Rivière du Prêcheur (Martinique, Petites Antilles)." Revue Française de Géotechnique, no. 176 (2023): 1. http://dx.doi.org/10.1051/geotech/2023020.
Full textRabhi, Kamel, Ali Chaouki, and Habib Ben Bacha. "Simulation en régime dynamique d’un système de réfrigération solaire à adsorption." Journal of Renewable Energies 17, no. 4 (October 19, 2023). http://dx.doi.org/10.54966/jreen.v17i4.467.
Full textLE BORGNE, Hélène, and Christophe BOUGET. "La reconnaissance des espèces basée sur l’ADN : applications, perspectives et défisen milieu continental terrestre." Naturae 2024, no. 3 (February 14, 2024). http://dx.doi.org/10.5852/naturae2024a3.
Full textDroz, Christophe. "Modèles haute résolution pour l’analyse dynamique ultra-rapide des structures à géométrie périodique." e-journal of nondestructive testing 28, no. 9 (September 2023). http://dx.doi.org/10.58286/28508.
Full textLivshits, Veniamin. "Mathematical methods used in the field of transport policy in the Soviet Union and in the CIS." Les Cahiers Scientifiques du Transport - Scientific Papers in Transportation 27 | 1993 (March 31, 1993). http://dx.doi.org/10.46298/cst.11929.
Full textDissertations / Theses on the topic "Dynamique des fluides – Simulation, Méthodes de"
Gevrin, Frédéric. "Modélisation dynamique de la fluidisation solide-liquide." Toulouse, INPT, 2002. http://www.theses.fr/2002INPT002G.
Full textEttaouil, Abdeslem. "Etude numérique du champ aérodynamique d'une hélice aérienne isolée ou en interaction avec une voilure : validation par comparaison de l'expérience." Aix-Marseille 2, 1987. http://www.theses.fr/1987AIX22093.
Full textMate, Annie. "Intéractions goutte-paroi dans un contacteur liquide-liquide." Toulouse, INPT, 1998. http://www.theses.fr/1998INPT008G.
Full textSicot, Frédéric. "Simulation efficace des écoulements instationaires périodiques en turbomachines." Ecully, Ecole centrale de Lyon, 2009. http://www.theses.fr/2009ECDL0019.
Full textMany industrial applications involve flows periodic in time. Flutter prediction or turbomachinery flows are some examples. Such flows are not simulated with enough efficiency when using classical unsteady techniques as a transient regime must be by-passed. New techniques, dedicated to time-periodic flows and based on Fourier analysis, have been developed recently. These methods, called harmonic balance, cast a time-periodic flow computation in several coupled steady computations, corresponding to a uniform sampling of the period. Their efficiency allow to get a precision good enough for engineering but much faster than classical nonlinear timemarching algorithms. The present study aims at imlementing one of these, the Time Spectral Method, in the ONERA solveur elsA. It is extended to an arbitrary lagrangian/eulerian formulation to take into mesh deformation for aeroelasticity applications. New implicit algorithms are developped to improve robustness. The TSM is successfully validated on external aerodynamic applications. Turbomachinery flows necessitate complex space and time interpolations ro reduce the computational domain to a single blade passage per row regardless of its geometry. Some applications in rotor/stator interactions and aeroelasticity are presented
Louste, Christophe. "Conception d'une méthode de planification de déplacement pour robot mobile selon la méthode des milieux continus appliquée aux fluides visqueux incompressibles." Montpellier 2, 1999. http://www.theses.fr/1999MON20196.
Full textDuguet, Yohann. "Simulation numérique de l'instabilité dans un cylindre de gaz tournant soumis à une compression périodique." Ecully, Ecole centrale de Lyon, 2004. http://www.theses.fr/2004ECDL0021.
Full textThis work concerns the direct numerical simulation of a new instability phenomenon occuring in confined rotating gas flows. It confirms the analytical results of J. F. Scott and J. P. Racz (2001) and the experimental work of L. Graftieaux (2003). A parametric resonance mechanism leads to conditional growth of inertial mode pair coupled by harmonic oscillations of a piston. A numerical code was developed under the assumption of axisymmetry of the flow, based on a galerkin-type spectral method. Special treatment of the velocity singularities in the cylinder corners is based on the substraction of an analytical lly specified flow the mimics the corner singularities. The results allow complete characterization of inertial mode pairs coupled by resonance, with particular attention focused on the primary axisymmetric mode studied experimentally. A marginal stability diagram and an exploration of the nonlinear regime were performed
Wernert, Philippe. "Méthodes de visualisation et de PIV appliquées à l'étude du décrochage dynamique profond et comparaison avec des résultats de simulation numérique." Aix-Marseille 2, 1997. http://www.theses.fr/1997AIX22110.
Full textLaucoin, Eli. "Développement du parallélisme des méthodes numériques adaptatives pour un code industriel de simulation en mécanique des fluides." Phd thesis, Grenoble 1, 2008. http://www.theses.fr/2008GRE10174.
Full textNumerical resolution of partial differential equations can be made reliable and efficient through the use of adaptive numerical methods. We present here the work we have done for the design, the implementation and the validation of such a method within an industrial software platform with applications in thermal-hydraulics. From the geometric point of view, this method can deal both with mesh refinement and mesh coarsening, while ensuring the quality of the mesh cells. Numerically, we use the mortar elements formalism in order to extend the Finite Volumes-Elements method implemented in the Trio-U platform and to deal with the non-conforming meshes arising from the adaptation procedure. Finally, we present an implementation of this method using concepts from domain decomposition methods for ensuring its efficiency while running in a parallel execution context
Laucoin, Eli. "Développement du parallélisme des méthodes numériques adaptatives pour un code industriel de simulation en mécanique des fluides." Phd thesis, Université Joseph Fourier (Grenoble), 2008. http://tel.archives-ouvertes.fr/tel-00385418.
Full textPaliard, Chloé. "Dimension reduction for fluid simulation and animation." Electronic Thesis or Diss., Institut polytechnique de Paris, 2024. http://www.theses.fr/2024IPPAT023.
Full textDespite tremendous improvements in graphics hardware performance aswell as key algorithmic advancements since the beginning of the years 2000, some natural phenomena remain extremely costly to simulate. For instance, several tracks have been proposed to improve the performance of fluid simulations, that are animated by solving partial differential equations (PDE), more specifically the highlynon-linear Navier-Stokes equations. In this thesis, we first explore the use of deep learning to create a reduced space in which a solver can operate with lower costs, while still out putting high-quality solutions. We propose a model that enables the simulation of turbulent flows at a resolution four times higher than that of the given input in each dimension, with improved runtime performance compared to a high-resolution solver. Secondly, we use the contributions on intrinsic operators for simulating fluids on 3D surfaces with reduced costs. We focus on the smoothed-particle hydrodynamics (SPH) model that we adapt to 3D surfaces, by gathering the particles' neighborhoods thanks to shortest-path geodesics, and by displacing such particles in an intrinsic manner on the surface. All of this is straightforward to implement on the GPU, enablingthe simulation of tens of thousands of particles on various triangle meshes at interactive speed
Books on the topic "Dynamique des fluides – Simulation, Méthodes de"
B, Gatski T., Hussaini M. Yousuff, and Lumley John L. 1930-, eds. Simulation and modeling of turbulent flows. New York: Oxford University Press, 1996.
Find full textK, Banerjee P., and Butterfield R, eds. Advanced geotechnical analyses. London: Elsevier, 1991.
Find full textJiang, Xi. Numerical techniques for direct and large-eddy simulations. Boca Raton: Taylor & Francis, 2009.
Find full textÖttinger, Hans Christian. Stochastic processes in polymeric fluids: Tools and examples for developing simulation algorithms. Berlin: Springer, 1996.
Find full textHeng, Yeoh Guan, and Yuen Kwok Kit, eds. Computational fluid dynamics in fire engineering: Theory, modelling and practice. Amsterdam: Elsevier, 2009.
Find full textE, Livne Oren, ed. Multigrid techniques: 1984 guide with applications to fluid dynamics. Philadelphia: Society for Industrial and Applied Mathematics, 2011.
Find full textTu, Jiyuan. Computational fluid dynamics: A practical approach. Amsterdam: Butterworth-Heinemann, 2008.
Find full textLargeeddy Simulation In Hydraulics. Taylor & Francis Ltd, 2013.
Find full textRodi, Wolfgang. Large-Eddy Simulation in Hydraulics. Taylor & Francis Group, 2013.
Find full textRodi, Wolfgang, George Constantinescu, and Thorsten Stoesser. Large-Eddy Simulation in Hydraulics. Taylor & Francis Group, 2013.
Find full textBook chapters on the topic "Dynamique des fluides – Simulation, Méthodes de"
MAISONNEUVE, Jean-Jacques. "Tenue à la mer des navires." In Interactions fluide-structure, 265–303. ISTE Group, 2022. http://dx.doi.org/10.51926/iste.9078.ch9.
Full textPERNOD, Laëtitia. "Calcul d’interaction fluide-structure par co-simulation." In Interactions fluide-structure, 221–63. ISTE Group, 2022. http://dx.doi.org/10.51926/iste.9078.ch8.
Full textGAILLER, Lydie, Jean-François LÉNAT, and Philippe LABAZUY. "Surveillance électrique et électromagnétique des volcans." In Aléas et surveillance de l’activité volcanique 3, 263–83. ISTE Group, 2022. http://dx.doi.org/10.51926/iste.9046.ch5.
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