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Note, however, that all of the models used material properties derived directly from macaque crania.
The authors also examined the FE model using material properties derived from a different species and skeletal part (i.e. human limb bone), and in that case found a weaker correspondence between FE and in vivo data.
Given that relatively few FE analyses of vertebrate skeletal structures employ material properties derived directly from the species and/or skeletal part of interest, the cautions outlined by Strait et al. [23] remain salient.
The analysis compared the performance of the FE model in four analyses in which assumptions about bone material properties ranged from coarse (a single set of isotropic material properties derived from human limb bones applied to the entire cranium) to precise (i.e., regionally varying orthotropic properties derived from an analysis of several macaque crania [34]).
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Contemporary computer models of the thorax designed to predict injury in automobile collisions model the costal cartilage as a homogeneous material using properties derived from local material characterization tests.
For this study, the material properties were derived from related research [8] (Table 1).
Empirical relations of dynamic increase factor (DIF) for the material properties are derived and presented.
The formulation of the location-dependent stiffness matrix due to nonhomogeneous material properties was derived.
New aspects for their modification and advanced strategies of alloy design and microstructure to improve material properties are derived.
The material properties were derived from the Repeated Load Axial Test (RLAT) and represented by a strain-dependent axial viscosity.
Single-fiber and fiber-bundle material properties were derived from passive stress strain tests of excised biopsies (n=47).
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