Accueil
Détail de l'auteur
Auteur R. DiRaddo |
Documents disponibles écrits par cet auteur
Ajouter le résultat dans votre panier Affiner la recherche
Modelling behaviour of PET for stretch and micro-blow moulding applications using an elasto-visco-plastic material model / H. Mir in INTERNATIONAL POLYMER PROCESSING, Vol. XXVI, N° 2 (05/2011)
[article]
Titre : Modelling behaviour of PET for stretch and micro-blow moulding applications using an elasto-visco-plastic material model Type de document : texte imprimé Auteurs : H. Mir, Auteur ; F. Thibault, Auteur ; R. DiRaddo, Auteur Année de publication : 2011 Article en page(s) : p. 173-181 Note générale : Bibliogr. Langues : Anglais (eng) Catégories : Elastoviscoplasticité
Matières plastiques -- Moulage par injection-étirage-soufflage
Modèles mathématiques
Modélisation tridimensionnelle
Polyéthylène téréphtalate
Rhéologie
Simulation, Méthode deIndex. décimale : 668.9 Polymères Résumé : Polyethylene terephthalate (PET) has been widely used in the stretch blow moulding (SBM) process for packaging applications. Finite element analysis has become extensively useful for assessing container designs and enabling the designers to perform analyses earlier in the design cycle to determine the best material and the best structure. However, there are several challenging issues due to various processing parameters and complex material behaviour, which is both temperature and strain-rate dependent. In this paper, we generalize the G’Sell-Jonas law in the three-dimensional (3D) case to model and simulate the elasto-visco-plastic (EVP) behaviour of PET, taking into account strain-hardening and strain-softening. In addition, it is observed that the internal pressure (inside the preform) is significantly different from the nominal pressure (imposed in the blowing device upstream) since the internal pressure and the enclosed volume of the preform are fully coupled. In order to accurately simulate this phenomenon, a thermodynamic model was used to characterize the pressurevolume relationship (PVR). The predicted pressure evolution is therefore more realistic when imposing only the machine power of the blowing device (air compressor or vacuum pump). Mechanical and temperature equilibrium equations are fully nonlinear and solved separately with implicit schemes on the current deformed configuration, which is updated at each time step. Biaxial characterization tests were used to determine the model parameters in order to simulate the SBM process using the PVR. Three industrial case studies, comparing simulated thickness predictions to experimental measurements, will be presented in order to illustrate the applicability of the proposed model. Note de contenu : - MODELLING OF PET AND BLOW MOULDING : Elasto-visco-plastic model of PET - Pressure volume relationship - Numerical implementation
- MATERIAL CHARACTERIZATION : Biaxial testing - Parameter identification
- EXPERIMENTAL VALIDATION : Stretch blow moulding - Simulation methods - Comparison study - Validation - Micro-blow moulding - Simulation and validationDOI : 10.3139/217.2414 En ligne : https://drive.google.com/file/d/1izYXtVIHSCAoGfD-YDt3cPG0BEBoXPQ9/view?usp=drive [...] Format de la ressource électronique : Permalink : https://e-campus.itech.fr/pmb/opac_css/index.php?lvl=notice_display&id=11521
in INTERNATIONAL POLYMER PROCESSING > Vol. XXVI, N° 2 (05/2011) . - p. 173-181[article]Réservation
Réserver ce document
Exemplaires (1)
Code-barres Cote Support Localisation Section Disponibilité 012997 - Périodique Bibliothèque principale Documentaires Disponible