Title of article
Modeling transients in the mechanical response of copper due to strain path changes
Author/Authors
Irene J. Beyerlein، نويسنده , , Carlos N. Tomé، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2007
Pages
25
From page
640
To page
664
Abstract
When copper is deformed to large strains its texture and microstructure change drastically, leading to plastic anisotropy and extended transients when it is reloaded along a different strain path. For predicting these transients, we develop a constitutive model for polycrystalline metals that incorporates texture and grain microstructure. The directional anisotropy in the single crystals is considered to be induced by variable latent hardening associated with cross-slip, cut-through of planar dislocation walls, and dislocation-based reversal mechanisms. These effects are introduced in a crystallographic hardening model which is, in turn, implemented into a polycrystal model. This approach successfully explains the flow response of OFHC Cu pre-loaded in tension (compression) and reloaded in tension (compression), and the response of OFHC Cu severely strained in shear by equal channel angular extrusion and subsequently compressed in each of the three orthogonal directions. This new theoretical framework applies to arbitrary strain path changes, and is fully anisotropic.
Keywords
B. Anisotropic material , B. Constitutive behavior , Bauschinger effect , A. Strengthening mechanisms , B. Polycrystalline material
Journal title
International Journal of Plasticity
Serial Year
2007
Journal title
International Journal of Plasticity
Record number
1257393
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