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Comparison of beam theory and finite-element analysis with in vivo bone strain data from the alligator cranium

机译:束理论和有限元分析与扬子鳄颅骨的体内骨骼应变数据的比较

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The mechanical behavior of the vertebrate skull is often modeled using free-body analysis of simple geometric structures and, more recently, finite-element (FE) analysis. In this study, we compare experimentally collected in vivo bone strain orientations and magnitudes from the cranium of the American alligator with those extrapolated from a beam model and extracted from an FE model. The strain magnitudes predicted from beam and FE skull models bear little similarity to relative and absolute strain magnitudes recorded during in vivo biting experiments. However, quantitative differences between principal strain orientations extracted from the FE skull model and recorded during the in vivo experiments were smaller, and both generally matched expectations from the beam model. The differences in strain magnitude between the data sets may be attributable to the level of resolution of the models, the material properties used in the FE model, and the loading conditions (i.e., external forces and constraints). This study indicates that FE models and modeling of skulls as simple engineering structures may give a preliminary idea of how these structures are loaded, but whenever possible, modeling results should be verified with either in vitro or preferably in vivo testing, especially if precise knowledge of strain magnitudes is desired. (c) 2005 Wiley-Liss, Inc.
机译:通常使用简单几何结构的自由体分析以及最近的有限元(FE)分析来模拟脊椎动物头骨的机械行为。在这项研究中,我们比较了从美国短吻鳄的头盖骨中实验收集的体内骨骼应变方向和大小与从射线模型推断并从有限元模型中提取的方向和大小。从梁和FE头骨模型预测的应变幅度与体内咬合实验期间记录的相对应变幅度和绝对应变幅度几乎没有相似之处。但是,从FE头骨模型提取并在体内实验期间记录的主要应变方向之间的定量差异较小,并且通常都符合梁模型的预期。数据集之间的应变大小差异可能归因于模型的分辨率级别,有限元模型中使用的材料属性以及加载条件(即外力和约束)。这项研究表明,有限元模型和作为简单工程结构的头骨建模可以初步了解这些结构的加载方式,但是只要有可能,就应该通过体外或体内试验来验证建模结果,尤其是如果对这些结构的精确知识有所了解的话。应变幅度是理想的。 (c)2005 Wiley-Liss,Inc.

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