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Modeling elastic properties in finite element analysis: How much precision is needed to produce an accurate model?

机译:有限元分析中的弹性特性建模:生产精确模型需要多少精度?

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The influence of elastic properties on finite-element analysis was investigated using a finite-element model of a Macaca fascicularis skull. Four finite-element analyses were performed in which the model was assigned different sets of elastic properties. In analysis 1, elastic properties were modeled isotropically using published data obtained from human limb bones. Analyses 2-4 used data obtained from skulls of a closely allied species, M. mulatta, but varied as to how those data were incorporated into the model. In analysis 2, the model was assigned a single set of isotropic elastic properties. In analysis 3, each region within the model was assigned its own set of isotropic elastic properties. Finally, in analysis 4, each region received its own set of orthotropic elastic properties. Although a qualitative assessment indicates that the locations of strain concentrations across the model are broadly similar in all analyses, a quantitative assessment of strain indicates some differences between the analyses. When strain data from the finite-element analyses were compared to strain data derived from in vivo experiments, it was found that the model deformed most realistically using the orthotropic elastic properties employed in analysis 4. Results suggest that finite-element analyses can be adversely affected when elastic properties are modeled imprecisely, and that modelers should attempt to obtain elastic properties data about the species and skeletal elements that are the subjects of their analyses. (c) 2005 Wiley-Liss, Inc.
机译:利用猕猴属岩颅骨的有限元模型研究了弹性性质对有限元分析的影响。进行四个有限元分析,其中分配了模型的不同弹性特性。在分析1中,使用从人肢体骨骼获得的已发表的数据进行各向同性地模拟弹性性质。分析2-4使用从密切相关的物种的头骨,M.Mulatta获得的二手数据,但随着这些数据如何结合到模型中。在分析2中,分配了一组各向同性弹性特性的模型。在分析3中,模型内的每个区域被分配其自身的各向同性弹性特性。最后,在分析4中,每个区域接收到其自身的正交弹性特性。尽管定性评估表明,在所有分析中,模型中应变浓度的位置大致相似,但对应变的定量评估表明分析之间的一些差异。将来自有限元分析的应变数据与来自体内实验的菌株数据进行比较,发现该模型使用分析中使用的正交弹性性能变形。结果表明有限元分析可能会受到不利影响当弹性特性不精确建模时,该建模应该试图获得有关其分析主题的物种和骨骼元素的弹性属性数据。 (c)2005 Wiley-Liss,Inc。

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