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The Lamel model made a prediction closer to the experimentally determined texture than the "full constraints" (FC) Taylor model and the "relaxed constraints" (RC) Pancake model.
This model is implemented in a Full Constraints Taylor model to obtain the response of a polycrystal from the response of the constituent single crystals.
Regardless of the deformation history used, the full constraints Taylor model is shown to be insufficient for texture predictions in multi-pass ECAE.
On the basis of experiments and calculations it has been found that the Taylor relaxed constraints model describes the present material more consistently with respect to experimental findings than the Taylor full constraints model.
The measured electron backscatter diffraction (EBSD) data are directly incorporated into the meso-scale roping model, in which the full constraints Taylor polycrystal plasticity model is used to simulate the r-value and then the thickness change for each window.
The yield surface, directional yield stresses and plastic strain ratios are calculated from Taylor-Bishop-Hill analysis, employing the measured texture data in combination with either the full constraints model or a relaxed constraints model.
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The full constraint Taylor pearlite model calculates yield stress of the ferrite phase.
Both finite element analyses and full constraint Taylor analyses based on the rate sensitive formulation were performed to analyze the deformation history and corresponding texture evolution during DCAP.
The stability condition of these components was calculated based on the full constraint Taylor-Bishop-Hill theory and could be described by a parameterdɛ13/dɛ11 with the suffixes 1 and 3 indicating the rolling and thickness directions, respectively.
The rotation field was taken from the literature, and results from a full constraint Taylor rate sensitive calculation for simple shear, assumed to act parallel to the die channel's intersection plane.
There is no significant difference between the schemes considering fixing of the outer surface of the PDL to the alveolar bone or its full constraint.
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