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Finite element modelling of squirrel guinea pig and rat skulls: using geometric morphometrics to assess sensitivity

机译:松鼠豚鼠和大鼠头骨的有限元建模:使用几何形态计量学评估敏感性

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摘要

Rodents are defined by a uniquely specialized dentition and a highly complex arrangement of jaw-closing muscles. Finite element analysis (FEA) is an ideal technique to investigate the biomechanical implications of these specializations, but it is essential to understand fully the degree of influence of the different input parameters of the FE model to have confidence in the model's predictions. This study evaluates the sensitivity of FE models of rodent crania to elastic properties of the materials, loading direction, and the location and orientation of the models’ constraints. Three FE models were constructed of squirrel, guinea pig and rat skulls. Each was loaded to simulate biting on the incisors, and the first and the third molars, with the angle of the incisal bite varied over a range of 45°. The Young's moduli of the bone and teeth components were varied between limits defined by findings from our own and previously published tests of material properties. Geometric morphometrics (GMM) was used to analyse the resulting skull deformations. Bone stiffness was found to have the strongest influence on the results in all three rodents, followed by bite position, and then bite angle and muscle orientation. Tooth material properties were shown to have little effect on the deformation of the skull. The effect of bite position varied between species, with the mesiodistal position of the biting tooth being most important in squirrels and guinea pigs, whereas bilateral vs. unilateral biting had the greatest influence in rats. A GMM analysis of isolated incisor deformations showed that, for all rodents, bite angle is the most important parameter, followed by elastic properties of the tooth. The results here elucidate which input parameters are most important when defining the FE models, but also provide interesting glimpses of the biomechanical differences between the three skulls, which will be fully explored in future publications.
机译:啮齿动物是由独特的专业牙列和颌骨闭合肌肉的高度复杂排列所定义的。有限元分析(FEA)是研究这些专业知识对生物力学影响的理想技术,但是必须充分了解FE模型的不同输入参数的影响程度,以对模型的预测充满信心。这项研究评估了啮齿动物cr的有限元模型对材料的弹性,载荷方向以及模型约束的位置和方向的敏感性。用松鼠,豚鼠和大鼠的头骨构造了三种有限元模型。每个都被加载以模拟在门牙以及第一和第三磨牙上的咬合,切牙咬合的角度在45°的范围内变化。骨骼和牙齿组件的杨氏模量在我们自己和先前发表的材料性能测试发现的极限之间变化。几何形态计量学(GMM)用于分析产生的头骨变形。发现在所有三种啮齿动物中,骨刚度对结果的影响最大,其次是咬合位置,然后是咬合角度和肌肉方向。牙齿的材料特性对头骨的变形影响很小。咬合位置的影响因物种而异,在松鼠和豚鼠中,咬牙的近中颌位置最为重要,而在大鼠中,双边咬合和单侧咬合的影响最大。 GMM对孤立的门牙变形的分析表明,对于所有啮齿动物,咬合角度是最重要的参数,其次是牙齿的弹性。此处的结果阐明了在定义有限元模型时哪些输入参数最重要,同时也提供了三个头骨之间生物力学差异的有趣发现,将在以后的出版物中进行全面探讨。

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