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Models used for the elasto-plastic behavior, strain rate sensitivity and material failure are presented for a carbon steel sheet.
The CL structure demonstrated higher strength (8.7 MPa) and a more elastic behavior (strain at break 357%) compared with the FGM (3.5 MPa, 297%).
It is important to research the effect of die structures parameters for equal channel angular extrusion (ECAE) on the deformation behavior, strain distribution and loads requirement.
In order to design the die correctly, it is important to understand the effect of die geometry and processing parameters on the deformation behavior, strain distribution and punch load.
In order to measure the strain from various depths of the girder to obtain the neutral axis movement behavior, strain gauges were placed at the center span of the girder with a constant depth increment of 300 mm.
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Accompanying the gradually deepening understanding of the deformation mechanisms and their relative importance, quantitative and mechanisms-based constitutive models that can realistically capture experimentally measured and grain-size-dependent stress strain behavior, strain-rate sensitivity and even ductility limit are becoming available.
As such, it is of importance to understand their coupled mechanical response, especially stress-strain behavior and strain to fracture.
The knowledge of deformation behavior and strain homogeneity is essential to design a sound ECAE die.
This progressive propagation behavior caused strain heterogeneity, which increased after each reactivation event.
The knowledge of deformation behavior and strain homogeneity is essential to design a sound ECAP die.
In contrast, the B-TRIP sample has relatively high continuously constant work hardening behavior over strain levels greater than 0.067.
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