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Interfacial damage and load transfermodeling in short fiber reinforced composites

Conférence invitée
Auteur
BONNAY, Kevin
DESPRINGRE, Nicolas
CHEMISKY, Yves
ccMERAGHNI, Fodil
178323 Laboratoire d'Etude des Microstructures et de Mécanique des Matériaux [LEM3]

URI
http://hdl.handle.net/10985/11174
Date
2016

Résumé

Due to the compromise between their thermomechanical properties and low density, Short Fiber Reinforced Polyamides (SFRP) present a good alternative to metals for automotive structural components. The microstructure of such materials, combined with the matrix sensitivity to environmental conditions, has a strong impact on their overall behavior and the related damage. A new multi-scale modelling strategy is proposed, based on the experimental observations of interfacial damage evolution for PA66-GF30 composites. Three main key-points have been integrated to this approach: an original damage evolution law at the interface, an appropriate load transfer law at the matrix-fiber interface, and a homogenization strategy founded on the generalized Mori-Tanaka scheme. The damage evolution law is driven by a local probabilistic criterion based on the interfacial stress field estimation. This type of evolution depends on the maximal local damage rate at the fiber/matrix interface, determined from a numerical evaluation at several points of the interface surrounding the inclusion. It is then coupled with a load transfer law formulated according to a modified shear lag model (SLM). The developed model is assessed with a finite element (FE) computation integrating cohesive elements at the matrix-fiber interface. The FE unit cell consists in a periodic media (hexagonal array) with periodic boundary conditions. The fiber-matrix interface integrates cohesive elements, with a cohesive law driven by a Paulino-Park-Roesler (PPR) potential-based formulation. The latter has been proven to be suitable for the 3D modeling of interface in reinforced composites. The proposed approach is able to accurately capture the non-linear behavior of short fiber reinforced polyamide composites accounting for interfacial damage.

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  • Laboratoire d'Etude des Microstructures et de Mécanique des Matériaux (LEM3)

Documents liés

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

  • Micromechanical modeling of damage and load transfer in particulate composites with partially debonded interface 
    Article dans une revue avec comité de lecture
    DESPRINGRE, Nicolas; CHEMISKY, Yves; BONNAY, Kevin; ccMERAGHNI, Fodil (Elsevier, 2016)
    A new micromechanical damage model accounting for progressive interface debonding is developed for composite materials. It consists of an original evolution law of the damage at the interface and an appropriate load transfer ...
  • Endommagement en fatigue du PA66 renforcé par des fibres de verre courtes : modélisation micromécanique et stratégie d'identification multi - échelles 
    Communication avec acte
    DESPRINGRE, Nicolas; CHEMISKY, Yves; ccFITOUSSI, Joseph; ccMERAGHNI, Fodil (2015)
    Cet article présente un modèle micromécanique visco-endommageable pour les composites à matrice thermoplastique renforcée par des fibres de verre courtes et soumis à un chargement en fatigue. L'approche multi-échelles ...
  • Micromechanical Fatigue Visco-Damage Model for Short Glass Fiber Reinforced Polyamide-66 
    Communication avec acte
    DESPRINGRE, Nicolas; CHEMISKY, Yves; ROBERT, Gilles; ccMERAGHNI, Fodil (Ibrahim Karaman, Raymundo Arróyave and Eyad Masad / Wiley, 2015)
    This work presents a micromechanical fatigue damage model developed for short glass fiber reinforced PA66. It has been developed to predict the high cycle fatigue behavior of PA66/GF30. The model is based on an extended ...
  • Multi-scale viscoelastic damage model of short glass fiber reinforced thermoplastics under fatigue loading 
    Communication avec acte
    DESPRINGRE, Nicolas; CHEMISKY, Yves; ARIF, Muhamad Fatikul; ROBERT, Gilles; ccMERAGHNI, Fodil (2014)
    This work presents a new micromechanical fatigue damage model for reinforced thermoplastic composites. The study aims at modeling high cycle fatigue damage of a short glass fiber reinforced polyamide-66. The developed ...
  • In situ SEM damage mechanisms investigation of short glass fiber reinforced polyamide composite 
    Communication avec acte
    ARIF, Muhamad Fatikul; DESPRINGRE, Nicolas; CHEMISKY, Yves; ROBERT, Gilles; ccMERAGHNI, Fodil (2013)
    Injection molded polyamide composite reinforced with short glass fibers has been widely used in automotive industry due to its high strength to weight ratio and the ability of injection process to produce complex parts. A ...

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