Finite element simulation of lamellar copper–silver composites
[Display omitted] •RVE is constructed with the important features of microstructure (lamellae, grains).•Material parameters of a crystal plasticity model have been identified.•Validation by means of compression tests in transverse direction.•Numerical texture results of each phase have been validate...
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Published in | Computational materials science Vol. 101; pp. 29 - 38 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
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Elsevier B.V
15.04.2015
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Abstract | [Display omitted]
•RVE is constructed with the important features of microstructure (lamellae, grains).•Material parameters of a crystal plasticity model have been identified.•Validation by means of compression tests in transverse direction.•Numerical texture results of each phase have been validated with experimental results.
The mechanical behavior and texture evolution of lamellar Cu–Ag polycrystals are numerically investigated for a uniaxial compression test by three dimensional finite element simulations. In the representative volume element (RVE), the lamellar structure is generated inside the grains. A crystal plasticity material model for large deformations is used at each integration point. In this work, two cold drawn textured Cu–Ag polycrystals are modeled by periodic Voronoi tessellations in the finite element (FE) software ABAQUS. The FE calculations use periodic boundary conditions to simulate the mechanical behavior of the textured polycrystals. The numerical model is validated by experimental compression tests for a constant strain rate of 10-4s-1 at room temperature. The numerical results in terms of texture of each phase and the mechanical behavior have been compared with the experimental results. |
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AbstractList | The mechanical behavior and texture evolution of lamellar Cu-Ag polycrystals are numerically investigated for a uniaxial compression test by three dimensional finite element simulations. In the representative volume element (RVE), the lamellar structure is generated inside the grains. A crystal plasticity material model for large deformations is used at each integration point. In this work, two cold drawn textured Cu-Ag polycrystals are modeled by periodic Voronoi tessellations in the finite element (FE) software ABAQUS. The FE calculations use periodic boundary conditions to simulate the mechanical behavior of the textured polycrystals. The numerical model is validated by experimental compression tests for a constant strain rate of at room temperature. The numerical results in terms of texture of each phase and the mechanical behavior have been compared with the experimental results. [Display omitted] •RVE is constructed with the important features of microstructure (lamellae, grains).•Material parameters of a crystal plasticity model have been identified.•Validation by means of compression tests in transverse direction.•Numerical texture results of each phase have been validated with experimental results. The mechanical behavior and texture evolution of lamellar Cu–Ag polycrystals are numerically investigated for a uniaxial compression test by three dimensional finite element simulations. In the representative volume element (RVE), the lamellar structure is generated inside the grains. A crystal plasticity material model for large deformations is used at each integration point. In this work, two cold drawn textured Cu–Ag polycrystals are modeled by periodic Voronoi tessellations in the finite element (FE) software ABAQUS. The FE calculations use periodic boundary conditions to simulate the mechanical behavior of the textured polycrystals. The numerical model is validated by experimental compression tests for a constant strain rate of 10-4s-1 at room temperature. The numerical results in terms of texture of each phase and the mechanical behavior have been compared with the experimental results. |
Author | Dodla, Srihari Bertram, A. Krüger, M. |
Author_xml | – sequence: 1 givenname: Srihari surname: Dodla fullname: Dodla, Srihari email: srihari.dodla@st.ovgu.de organization: Institut für Mechanik, Otto-von-Guericke-Universität Magdeburg, D-39106 Magdeburg, Germany – sequence: 2 givenname: A. surname: Bertram fullname: Bertram, A. organization: Institut für Mechanik, Otto-von-Guericke-Universität Magdeburg, D-39106 Magdeburg, Germany – sequence: 3 givenname: M. surname: Krüger fullname: Krüger, M. organization: Institut für Werkstoff- und Fügetechnik (IWF), Otto-von-Guericke-Universität Magdeburg, D-39106 Magdeburg, Germany |
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Keywords | RVE Two-phase Cu–Ag polycrystals Crystallographic texture Lamellar phase structure Crystal plasticity material model |
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•RVE is constructed with the important features of microstructure (lamellae, grains).•Material parameters of a crystal plasticity model have... The mechanical behavior and texture evolution of lamellar Cu-Ag polycrystals are numerically investigated for a uniaxial compression test by three dimensional... |
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SubjectTerms | COMPOSITES COMPUTER SIMULATION Crystal plasticity material model Crystallographic texture Finite element method Lamellar phase structure MATHEMATICAL ANALYSIS Mathematical models MECHANICAL PROPERTIES Polycrystals PROPERTIES RVE Surface layer Texture TEXTURES Two-phase Cu–Ag polycrystals |
Title | Finite element simulation of lamellar copper–silver composites |
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