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Elastic and inelastic local strain fields in composites with coated fibers or particles: theory and validation

Article dans une revue avec comité de lecture
Auteur
CHATZIGEORGIOU, George
ccMERAGHNI, Fodil
178323 Laboratoire d'Etude des Microstructures et de Mécanique des Matériaux [LEM3]

URI
http://hdl.handle.net/10985/14295
DOI
10.1177/1081286518822695
Date
2019
Journal
Mathematics and Mechanics of Solids

Résumé

This paper deals with mean field multiscale approaches for coated fiber- or particle-reinforced composites under nonlinear strain. The current work attempts to extend Dvorak’s well-known transformation field analysis for mean field approaches, in which the composite’s constitutive law is split into an elastic and an inelastic part. The classical Eshelby’s inhomogeneity problem considering eigenstrains is revisited in order to address the presence of a coating layer. For this scope, three different methodologies are employed, one for general ellipsoidal inhomogeneities, a modified composite cylinder method for long cylindrical fibers and a modified composite sphere method for spherical particles. After identifying proper interaction tensors for the inhomogeneity and its coating layer, the composite’s overall response is evaluated by extending classical mean field techniques, such as the Mori–Tanaka and the self-consistent methods. Numerical examples illustrate the differences in macroscopic and microscopic predictions between the general approach and the modified composite cylinder and sphere Assemblages.

Fichier(s) constituant cette publication

Nom:
LEM3_MMS_2019A_CHATZIGEORGIOU.pdf
Taille:
1.348Mo
Format:
PDF
Fin d'embargo:
2019-07-01
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  • Laboratoire d'Etude des Microstructures et de Mécanique des Matériaux (LEM3)

Documents liés

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  • Periodic homogenization for fully coupled thermomechanical modeling of dissipative generalized standard materials 
    Article dans une revue avec comité de lecture
    CHATZIGEORGIOU, George; CHARALAMBAKIS, Nicolas; CHEMISKY, Yves; ccMERAGHNI, Fodil (Elsevier, 2016)
    The current work deals with periodic thermomechanical composite media, in which the material constituents are considered to obey the generalized standard materials laws. The aim is to provide a proper homogenization framework ...
  • Constitutive modeling of shape memory alloys incorporating transformation-induced plasticity and damage 
    Conférence invitée
    CHATZIGEORGIOU, George; CHENG, Long; CHEMISKY, Yves; ccMERAGHNI, Fodil (Scheven Malte von; Keip Marc-André; Karajan Nils, 2017)
    Shape memory alloys (SMAs) are exploited in several innovative applications such as biocompatible actuators experiencing up to large number of cyclic loads. However, the description of the SMA cyclic response is still ...
  • Effective properties of dissipative composites under fully coupled thermomechanical processes 
    Conférence invitée
    CHATZIGEORGIOU, George; CHARALAMBAKIS, Nicolas; CHEMISKY, Yves; ccMERAGHNI, Fodil (2016)
    The current work deals with periodic composite media undergoing fully coupled thermomechanical loading. In these composites the material constituents are considered to obey the generalized standard materials laws. The aim ...
  • Modélisation multi-échelles en viscoplasticité endommageable de composites thermoplastiques renforcés par des fibres discontinues 
    Conférence invitée
    ACHOUR, Nadia; CHATZIGEORGIOU, George; BONNAY, Kevin; ccMERAGHNI, Fodil (2017)
    Un nouveau modèle multi-échelles en régime viscoplastique endommageable est développé pour un composite à matrice polypropylène renforcé par des fibres de verre courtes. Basé sur l’approche en champs moyens de Mori Tanaka, ...
  • Multiscale modeling of periodic dissipative composites under thermomechanical loading conditions 
    Conférence invitée
    CHARALAMBAKIS, Nicolas; CHATZIGEORGIOU, George; CHEMISKY, Yves; ccMERAGHNI, Fodil (2017)
    The modern technological challenges on the engineering industry and the extensive advances in the materials science have caused a tremendous increase in the development of composites. Plenty of engineering and biomechanics ...

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