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硬尾蜥颅骨咬合力的有限元与多体动力学联合分析

Combined finite element and multibody dynamics analysis of biting in a Uromastyx hardwickii lizard skull.

作者信息

Moazen M, Curtis N, Evans S E, O'Higgins P, Fagan M J

机构信息

Department of Engineering, University of Hull, Hull, UK.

出版信息

J Anat. 2008 Nov;213(5):499-508. doi: 10.1111/j.1469-7580.2008.00980.x.

Abstract

Lizard skulls vary greatly in shape and construction, and radical changes in skull form during evolution have made this an intriguing subject of research. The mechanics of feeding have surely been affected by this change in skull form, but whether this is the driving force behind the change is the underlying question that we are aiming to address in a programme of research. Here we have implemented a combined finite element analysis (FEA) and multibody dynamics analysis (MDA) to assess skull biomechanics during biting. A skull of Uromastyx hardwickii was assessed in the present study, where loading data (such as muscle force, bite force and joint reaction) for a biting cycle were obtained from an MDA and applied to load a finite element model. Fifty load steps corresponding to bilateral biting towards the front, middle and back of the dentition were implemented. Our results show the importance of performing MDA as a preliminary step to FEA, and provide an insight into the variation of stress during biting. Our findings show that higher stress occurs in regions where cranial sutures are located in functioning skulls, and as such support the hypothesis that sutures may play a pivotal role in relieving stress and producing a more uniform pattern of stress distribution across the skull. Additionally, we demonstrate how varying bite point affects stress distributions and relate stress distributions to the evolution of metakinesis in the amniote skull.

摘要

蜥蜴的头骨在形状和结构上差异很大,并且在进化过程中头骨形态的剧烈变化使其成为一个引人入胜的研究课题。进食机制肯定受到了头骨形态变化的影响,但这是否是变化背后的驱动力是我们旨在通过一个研究项目来解决的根本问题。在这里,我们实施了有限元分析(FEA)和多体动力学分析(MDA)相结合的方法来评估咬食过程中的头骨生物力学。在本研究中评估了硬鳞岩蜥的一个头骨,其中从多体动力学分析中获得了咬食周期的载荷数据(如肌肉力、咬合力和关节反力),并将其应用于加载有限元模型。实施了五十个载荷步,对应于朝着牙列的前部、中部和后部进行双侧咬食。我们的结果显示了将多体动力学分析作为有限元分析的初步步骤的重要性,并提供了对咬食过程中应力变化的见解。我们的研究结果表明,在功能正常的头骨中,颅骨缝线所在区域会出现更高的应力,因此支持了这样一种假设,即缝线可能在缓解应力以及在整个头骨上产生更均匀的应力分布模式方面发挥关键作用。此外,我们展示了不同的咬点如何影响应力分布,并将应力分布与羊膜动物头骨的运动性进化联系起来。

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