A dislocation density based material model to simulate the anisotropic creep behavior of single-phase and two-phase single crystals |
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Authors: | J. Preuß ner,Y. Rudnik,H. Brehm,R. Vö lkl,U. Glatzel |
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Affiliation: | 1. Metals and Alloys, University of Bayreuth, Ludwig-Thoma-Strasse 36b, 95447 Bayreuth, Germany;2. Fraunhofer Institut für Fertigungstechnik und Angewandte Materialforschung (IFAM), Wiener Strasse 12, 28359 Bremen, Germany;3. Behr GmbH & Co. KG, Mauserstrasse 3, 70469 Stuttgart, Germany |
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Abstract: | The primary and secondary creep behavior of single crystals is observed by a material model using evolution equations for dislocation densities on individual slip systems. An interaction matrix defines the mutual influence of dislocation densities on different glide systems. Face-centered cubic (fcc), body-centered cubic (bcc) and hexagonal closed packed (hcp) lattice structures have been investigated. The material model is implemented in a finite element method to analyze the orientation dependent creep behavior of two-phase single crystals. Three finite element models are introduced to simulate creep of a γ′ strengthened nickel base superalloy in 〈1 0 0〉, 〈1 1 0〉 and 〈1 1 1〉 directions. This approach allows to examine the influence of crystal slip and cuboidal microstructure on the deformation process. |
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Keywords: | Dislocations Creep Constitutive equations Finite elements Anisotropic material |
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