首页> 外文期刊>Journal of Anatomy >Assessing mechanical function of the zygomatic region in macaques: validation and sensitivity testing of finite element models.
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Assessing mechanical function of the zygomatic region in macaques: validation and sensitivity testing of finite element models.

机译:评估猕猴the骨区域的机械功能:有限元模型的验证和敏感性测试。

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Crucial to the interpretation of the results of any finite element analysis of a skeletal system is a test of the validity of the results and an assessment of the sensitivity of the model parameters. We have therefore developed finite element models of two crania of Macaca fascicularis and investigated their sensitivity to variations in bone material properties, the zygomatico-temporal suture and the loading regimen applied to the zygomatic arch. Maximum principal strains were validated against data derived from ex vivo strain gauge experiments using non-physiological loads applied to the macaque zygomatic arch. Elastic properties of the zygomatic arch bone and the zygomatico-temporal suture obtained by nanoindentation resulted in a high degree of congruence between experimental and simulated strains. The findings also indicated that the presence of a zygomatico-temporal suture in the model produced strains more similar to experimental values than a completely separated or fused arch. Strains were distinctly higher when the load was applied through the modelled superficial masseter compared with loading an array of nodes on the arch. This study demonstrates the importance of the accurate selection of the material properties involved in predicting strains in a finite element model. Furthermore, our findings strongly highlight the influence of the presence of craniofacial sutures on strains experienced in the face. This has implications when investigating craniofacial growth and masticatory function but should generally be taken into account in functional analyses of the craniofacial system of both extant and extinct species.
机译:对骨骼系统的任何有限元分析结果进行解释的关键是对结果的有效性进行测试,并对模型参数的敏感性进行评估。因此,我们已经开发了两个猕猴的cr骨的有限元模型,并研究了它们对骨材料特性,the-颞-缝线和applied骨弓加载方式的变化的敏感性。使用施加于猕猴弓的非生理载荷,对照来自离体应变仪实验的数据验证了最大主要菌株。通过纳米压痕获得的arch弓骨和and-颞缝的弹性特性导致了实验和模拟菌株之间的高度一致。研究结果还表明,模型中a骨-颞缝的存在比完全分离或融合的弓形更能产生类似于实验值的菌株。当通过模型化的浅口咬肌施加载荷时,相比于在弓上加载节点阵列,应变明显更高。这项研究证明了在有限元模型中准确选择与预测应变有关的材料特性的重要性。此外,我们的发现强烈强调了颅面缝线的存在对面部所经历的应变的影响。这在调查颅面生长和咀嚼功能时具有影响,但在对现存和灭绝物种的颅面系统进行功能分析时,通常应将其考虑在内。

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