Published September 12, 2013 | Version v1
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Micromechanical modeling and inverse identification of damage using cohesive approaches

Description

In this study a micromechanical model is proposed for a collection of cohesive zone models embedded between two each elements of a standard cohesive-volumetric finite element method. An equivalent 'matrix-inclusions' composite is proposed as a representation of the cohesive-volumetric discretization. The overall behaviour is obtained using homogenization approaches (Hashin Shtrikman scheme and the P. Ponte Castaneda approach). The derived model deals with elastic, brittle and ductile materials. It is available whatever the triaxiality loading rate and the shape of the cohesive law, and leads to direct relationships between the overall material properties and the local cohesive parameters and the mesh density. First, rigorous bounds on the normal and tangential cohesive stiffnesses are obtained leading to a suitable control of the inherent artificial elastic loss induced by intrinsic cohesive models. Second, theoretical criteria on damageable and ductile cohesive parameters are established (cohesive peak stress, critical separation, cohesive failure energy,... ). These criteria allow a practical calibration of the cohesive zone parameters as function of the overall material properties and the mesh length. The main interest of such calibration is its promising capacity to lead to a mesh-insensitive overall response in surface damage. (author)

Abstract (French)

Un modele micromecanique est propose pour une collection de zones cohesives inserees entre toutes les mailles d'une discretisation de type elements finis cohesifs-volumiques. Le principe de l'approche consiste a introduire un composite equivalent 'matrice-inclusions' comme une representation de la discretisation cohesive-volumique. Le modele obtenu a l'aide de techniques d'homogeneisation (schema de Hashin Shtrikman et approche de P. Ponte Castaneda) permet de decrire le comportement macroscopique elastique, fragile et ductile. Il est valable quel que soit le taux de triaxialite applique et la forme de la loi cohesive retenue, et permet de relier, d'une facon explicite, les proprietes macroscopiques du materiau aux differents parametres cohesifs ainsi qu'a la densite de maillage. Un premier resultat est l'etablissement d'un critere pratique permettant de definir les raideurs cohesives au regard de la souplesse additionnelle inherente a l'utilisation des mod eles de zones cohesives intrinseques. L'extension du modele au cas de la rupture fragile et ductile, permet d'obtenir d'autres criteres pratiques pour calibrer les autres parametres cohesifs (contrainte cohesive maximale, ouverture critique, energie de fissuration,... ). L'utilisation couplee des criteres obtenus permet une calibration inverse des parametres de la loi cohesive en fonction des proprietes macroscopiques du materiau et de la taille de maillage. De fait il est possible de predire un comportement homogene global independamment de la taille du maillage. (auteur)

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Additional details

Additional titles

Original title (French)
Modelisation Micromecanique et Identification Inverse de l'Endommagement par Approches Cohesives

Publishing Information

Imprint Pagination
147 p.
Report number
FRNC-TH--8950

Optional Information

Notes
79 refs.; Available online at: https://tel.archives-ouvertes.fr/tel-00870763; Also available from the INIS Liaison Officer for France, see the 'INIS contacts' section of the INIS website for current contact and E-mail addresses: http://www.iaea.org/inis/Contacts/