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Artykuły w czasopismach na temat "Composites à Matrice Organique (CMO)":
Verdu, Jacques. "Matériaux composites à matrice organique". Matériaux & Techniques 83, nr 5-6 (1995): 17–30. http://dx.doi.org/10.1051/mattech/199583050017.
Levoy, R., i B. La Motte. "Les matériaux pour équipements développement des composites à matrice organique". Matériaux & Techniques 76 (1988): 72–84. http://dx.doi.org/10.1051/mattech/198876020072s.
Colin, Xavier, i Jacques Verdu. "Vieillissement thermo-oxydant des composites à matrice organique. Prédiction de durée de vie". Revue des composites et des matériaux avancés 12, nr 1 (23.04.2002): 163–86. http://dx.doi.org/10.3166/rcma.12.163-186.
Lévêque, David, Anne Schieffer, Anne Mavel, Nicolas Chemineau i Jean-François Maire. "Analyse multiéchelle des effets du vieillissement sur la tenue mécanique des composites à matrice organique". Revue des composites et des matériaux avancés 12, nr 1 (23.04.2002): 139–62. http://dx.doi.org/10.3166/rcma.12.139-162.
Foti, Federico, Yannick Pannier, Marco Gigliotti, Marie Christine Lafarie-Frenot, David Mellier i Thach Can Luu. "Fatigue multi-physique de matériaux composites à matrice organique stratifiés croisés [0/90]spour applications aéronautiques". Matériaux & Techniques 104, nr 4 (2016): 406. http://dx.doi.org/10.1051/mattech/2016019.
Yang, Peidong, i Charles M. Lieber. "Nanostructured high-temperature superconductors: Creation of strong-pinning columnar defects in nanorod/superconductor composites". Journal of Materials Research 12, nr 11 (listopad 1997): 2981–96. http://dx.doi.org/10.1557/jmr.1997.0393.
GIGLIOTTI, Marco, Jean-Claude GRANDIDIER i Marie Christine LAFARIE-FRENOT. "Vieillissement de matériaux composites à matrice organique - Cas d'études". Plastiques et composites, czerwiec 2014. http://dx.doi.org/10.51257/a-v1-am5323.
GIGLIOTTI, Marco, Jean-Claude GRANDIDIER i Marie Christine LAFARIE-FRENOT. "Vieillissement des composites à matrice organique - Outils de modélisation". Plastiques et composites, październik 2013. http://dx.doi.org/10.51257/a-v1-am5322.
Rozprawy doktorskie na temat "Composites à Matrice Organique (CMO)":
Castres, Magali. "Modélisation dynamique avancée des composites à matrice organique (CMO) pour l’étude de la vulnérabilité des structures aéronautiques". Thesis, Ecole centrale de Lille, 2018. http://www.theses.fr/2018ECLI0006/document.
Nowadays, organic matrix composite materials are widely used in the transportation industry, and particularly in the aeronautical industry. To provide an optimal dimensioning of the structures, it is necessary to study the mechanical behavior of OMC on a large range of strain rates and temperatures. The aim of this PhD thesis is to propose a behavior and a rupture model to predict the mechanical response of OMC for a large range of strain rates and temperatures. The research was initially focused on the characterization of the transition between the linear and nonlinear behavior of the material T700GC/M21, a carbon / epoxy unidirectional laminate as well as the strain rate and temperature dependencies of this transition. The work was then focused on the experimental study of the nonlinear damaged behavior of the T700GC/M21. Finally, completing these first two steps, an updated version of the behavior model available at ONERA (OPFM) was proposed which includes the transition between linear and nonlinear behavior and the influence of strain rate and temperature on the mechanical response of the material
Berthe, Julien. "Comportement thermo-visco-élastique des composites CMO - De la statique à la dynamique grande vitesse". Phd thesis, Ecole Centrale de Lille, 2013. http://tel.archives-ouvertes.fr/tel-00934876.
Tuloup, Corentin. "Process and structural health monitoring of Polymer-Matrix Composites (PMC) using embedded piezoelectric transducers". Thesis, Compiègne, 2020. https://bibliotheque.utc.fr/Default/doc/SYRACUSE/2020COMP2593.
This innovative work studies the interest of integrating piezoelectric transducers (ceramic and/or polymer-based) within Polymer- Matrix Composite materials (PMC) to perform real-time and in-situ monitoring of their manufacturing process (Process Monitoring PM) as well as their lifespan (Structural Health Monitoring SHM). To do this, the piezoelectric transducers were integrated into the heart of the fibrous stacks using an innovative methodology developed within the "Materials and Surfaces" research team at the Roberval laboratory. The Liquid Resin Infusion (LRI) manufacturing system used (PM campaign), as well as the resulting samples tested mechanically (SHM campaign), were multi-instrumented using several Non-Destructive Testing devices (NDT: Acoustic Emission (AE), Infrared Thermography (IRT), Digital Image Correlation (DIC), etc.) in order to establish multi-physical couplings between the signals of external NDT techniques and the internal signature (electrical capacitance) coming from the transducers integrated into the heart of the material. In PM, the piezoceramic (PZT) transducers were found to be sensitive to the various key steps of the LRI process (flow front passing, impregnation, end of injection, chemo-physical transitions during curing and associated consolidation rates) achieved at different hardener rates, and able to detect manufacturing defects. These results showed great potential, worthy of future use on an industrial scale. In SHM, after verification of the non-intrusiveness of the ceramic and polymer-based transducers integrated into the heart of the mechanical test specimens, the polymer transducers allowed a real-time evaluation of the triaxial strain state and the rigidity loss experienced by the host PMC during its mechanical loading. However, despite a Non-Working Threshold (NWT) linked to the brittleness of their constitutive material, the piezoceramic transducers have shown a high sensitivity to the detection and monitoring of damage in real-time when they are positioned intelligently with respect to the mechanical stress. These thesis works ended with a first attempt aimed at transposing the knowledge acquired on PM and SHM of in-situ piezoelectric transducers from a 2D “laboratory” scale to a 3D structural one closer to industrial realities. The multi-instrumented manufacturing of an “Omega” stiffener PMC structure integrating 14 piezoelectric transducers (PZT and P(VDF-TrFE) copolymer) and reinforced through-the-thickness by a carbon tuft thread allowed confirming the previously evidenced PM abilities of the PZT, and showed a difference between how the electrical capacitance signals of PZT and copolymers react to the whole manufacturing process
Decla, François. "Métallisation de composites à matrice organique (carbone/epoxy) par projection plasma". ENSMP, 1997. http://www.theses.fr/1997ENMP0777.
Hindermann-Bischoff, Manuela. "Etude des propriétés électriques de composites matrice organique - noir de carbone". Mulhouse, 1999. http://www.theses.fr/1999MULH0560.
KIRMANN, JEROME. "Metallisation de materiaux composites a matrice organique par interposition d'une interphase". Besançon, 1997. http://www.theses.fr/1997BESA2036.
Hu, Bing. "Comportement hygrothermique des composites à matrice organique : mesures et analyse statistique". Dijon, 1999. http://www.theses.fr/1999DIJOS065.
GUEGAN, PIERRICK. "Contribution a la qualification de l'usinage de materiaux composites a matrice organique". Nantes, 1994. http://www.theses.fr/1994NANT2025.
Chouchaoui, Cherif-Saâdane. "Modélisation du comportement des matériaux composites à renforts tissés et à matrice organique". Compiègne, 1995. http://www.theses.fr/1995COMP854S.
MEZIERE, YANN. "Tolerance au dommage - etude du delaminage dans les materiaux composites a matrice organique". Toulouse 3, 2000. http://www.theses.fr/2000TOU30001.
Książki na temat "Composites à Matrice Organique (CMO)":
Chrétien, Gilbert. Matériaux composites à matrice organique: Polymères et renforts type, caractéristiques, technologies de mise en forme, applications. Paris: Lavoisier, 1986.