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Fibers are important microstructural elements in many foods.
Microstructural elements in NiTi shape memory alloys (SMAs) – precipitates, phase boundaries, inclusions, grain boundaries – can be viewed as sources of multiscale constraint that influence their deformation response.
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These microstructural elements potentially are analogous to similar measures taken in human laboratory studies, such as time between sips and length of time taken to finish a drink.
However, microstructural elements (e.g., defect clusters and dislocation structures) retained high hardening even after 50 h of annealing treatment.
The initial microstructure in both coarse-grained (CG) and UFG conditions was characterized by transmission electron microscopy and orientation imaging microscopy to better correlate the observed deformation behavior with the microstructural elements.
Microstructural studies reveal an uneven distribution of alloying elements in the phases and they are predominantly segregated to the eutectic β phase.
In this study, microstructural finite element analysis results were analyzed using individual trabeculae segmentation (ITS) to identify the type and orientation of trabeculae where tissue yielded during compressive overloads in two orthogonal directions.
Two- and three-dimensional microstructural finite element (FE) simulations of monotonic and fatigue failures in Al 5083 having bimodal grain structures are conducted.
Briefly, microstructural finite element (µFE) models were generated by converting each bone voxel to an 8-node brick element.
In this study, a number of bi-crystal models with tilt grain boundary (TGB) misorientation angles ranging between 0°≤ θ ≤ 90° were developed, with rotation performed about the [001] axis, using numerical microstructural finite element analysis.
Based on finite element analysis and microstructural observation in cylindrical hot compression experiments, the appropriate hot continuous rolling technologies have been designed for rod products with diffierent diameters.
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