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It is shown that this interaction is essential in determining the time evolution of the specimen shape.
A high speed camera is integrated to record the surface evolution of the specimen through the observation window.
In particular, the evolution of the specimen geometry during the deformation under multi-axial loading conditions are also well-predicted by the constitutive model.
Mechanical properties and microstructure evolution of the specimen processed by the sequence were investigated by tension, Vickers micro-hardness, electron backscattering diffraction (EBSD), and fatigue tests compared with those for the conventional wire-drawing process.
Mechanical properties, microstructure and texture evolution of the specimen processed by the newly proposed process and conventional wire drawing (WD) were investigated by tension test, electron backscattering diffraction (EBSD), and X-ray diffraction (XRD) for comparison.
Moreover, the thermographic technique was used during the static tests in order to identify the fracture zone and also during the fatigue tests, carried out at different frequencies, to study the temperature evolution of the specimen.
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The calculated compliance evolution of the specimens also matches the previous experiments.
In the present work, a 3D multi-layer model of the plasma spray process was developed to study the thermal and mechanical evolutions of the specimen.
The model can handle the morphological evolution of the organic specimen under the influence of external convection (fluid-dynamics of the bioreactor).
Experiments were conducted for refractory alloy and C/SiC (carbon fiber reinforced silicon carbide composites) and the surface evolution of these specimens at high temperature was recorded.
The structural evolution of the as-grown specimens that underwent 30-min chemical etching and 2-h hydrothermal growth (S30Z2) is presented in the right panels of Figure 1.
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