Modeling of inter- and transgranular stress corrosion crack propagation in polycrystalline material by using phase field method

Author:

Nguyen Thanh-Tung1,Réthoré Julien2,Baietto Marie-Christine3,Bolivar José4,Fregonese Marion4,Bordas Stéphane P.A.1

Affiliation:

1. Institute of Computational Engineering, University of Luxembourg, 6 Avenue de la Fonte, 4362, Esch-sur-Alzette, Luxembourg

2. Université de Nantes, Ecole Centrale de Nantes, GEM, CNRS UMR 6183 CNRS, Nantes, France

3. Université de Lyon, CNRS, INSA-Lyon, LaMCoS UMR5259, Lyon, France

4. Université de Lyon, CNRS, INSA-Lyon, Université Lyon 1, MateIS UMR5510, Lyon, France

Abstract

AbstractA coupled multiphysics phase field framework is proposed to model anodic dissolution induced by stress corrosion fracture growth at microstructual level. The effects of electrochemical-mechanical processes (including crystal anisotropy) are all taken into account. This new model is based upon: (i) an anisotropic phase transformation model based on a variational formulation to describe material dissolution along preferential directions; (ii) an efficient description of grain boundaries as a smeared cohesive zone; (iii) an explicit approximation to model the different electrochemical behaviors between grain boundary and grain interior. Both intergranular and transgranular stress corrosion cracking is simulated in an efficient manner. The abilities of the proposed model are illustrated through several numerical examples involving a full prediction of complex crack network growth induced by stress corrosion cracking within 2D polycrystaline models.

Publisher

Walter de Gruyter GmbH

Subject

Mechanics of Materials,Materials Science (miscellaneous)

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