Rayfield Emily J
Department of Earth Sciences, University of Cambridge, Cambridge, UK.
Anat Rec A Discov Mol Cell Evol Biol. 2005 Apr;283(2):349-65. doi: 10.1002/ar.a.20168.
Finite-element analysis (FEA) can be used to investigate the mechanical significance of sutures and regions of intracranial flexibility in skulls. By modeling the stress response to feeding forces in a finite-element skull model (with appropriate boundary conditions), one can compare the axis of distortion and orientation of stress and strain in the model to the degree of movement at actual sutural contacts in the real skull. Hypotheses detailing the effect of introducing patency or flexibility on mechanical performance can be constructed and subsequently tested. In this study, the correlation between stress environment, cranial strength, and sutural morphology and mobility is investigated in the cranium of the large theropod dinosaur Allosaurus fragilis. Theropods are an especially interesting model system as their skulls were massive (over 100 cm in some cases), may have generated extremely large bite forces, yet patent sutures persisted between many of the facial bones. In this analysis, it was discovered that Allosaurus cranial sutures appear generally capable of accommodating stress and strain patterns generated during biting. This study highlights the potential of FEA in devising and testing hypotheses of form and function and argues that useful information can be obtained from finite-element models of extinct animals, providing that adequate assumptions are made and appropriate questions asked.
有限元分析(FEA)可用于研究颅骨中缝合线和颅内柔韧性区域的力学意义。通过在有限元颅骨模型中模拟对进食力的应力响应(设定适当的边界条件),可以将模型中的变形轴以及应力和应变方向与真实颅骨中实际缝合线接触处的移动程度进行比较。可以构建并随后测试详细说明引入开放性或柔韧性对力学性能影响的假设。在本研究中,我们在大型兽脚亚目恐龙脆弱异特龙的颅骨中研究了应力环境、颅骨强度、缝合线形态和活动性之间的相关性。兽脚亚目恐龙是一个特别有趣的模型系统,因为它们的头骨很大(某些情况下超过100厘米),可能产生极大的咬合力,但许多面部骨骼之间仍存在开放性缝合线。在该分析中,发现异特龙的颅骨缝合线通常似乎能够适应咬合过程中产生的应力和应变模式。这项研究突出了有限元分析在设计和测试形态与功能假设方面的潜力,并认为只要做出充分假设并提出恰当问题,就可以从已灭绝动物的有限元模型中获得有用信息。