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人眼眶爆裂性骨折中纯“爆裂”机制的非线性动力学分析。

Nonlinear dynamic analysis of the pure "buckling" mechanism during blow-out trauma of the human orbit.

机构信息

Department of Structural Mechanics, Faculty of Civil and Environmental Engineering, Gdańsk University of Technology, 11/12 Gabriela Narutowicza St., 80-233, Gdańsk, Poland.

Department of Otolaryngology, Medical University of Gdańsk, 17 Mariana Smoluchowskiego St., Gdańsk, 80-214, Poland.

出版信息

Sci Rep. 2020 Sep 17;10(1):15275. doi: 10.1038/s41598-020-72186-1.

Abstract

Considering the interplay between orbital bones and intraorbital soft tissues, commonly accepted patterns of the blow-out type of trauma within the human orbit require more thorough investigation to assess the minimal health-threatening impact value. Two different three-dimensional finite element method (FEM) models of the human orbital region were developed to simulate the pure "buckling" mechanism of orbital wall fracture in two variants: the model of orbital bone elements and the model of orbital bone, orbit and intraorbital tissue elements. The mechanical properties of the so-defined numerical skull fragment were applied to the model according to the unique laboratory tensile stress tests performed on small and fragile specimens of orbital bones as well as using the data available in the literature. The nonlinear transient analysis of the contact problem between bodies that differ substantially in terms of the Young's modulus was carried out to investigate the interaction of different bodies within an instant injury. Potential damage areas were found within the lower orbital wall as well as the destructive load values for both FEM skull models (7,660 N and 8,520 N). Moreover, numerical simulations were validated by comparing them with computed tomography scans of real injuries.

摘要

考虑到眼眶骨与眼内软组织之间的相互作用,普遍接受的人类眼眶爆裂性创伤类型模式需要更深入的研究,以评估对健康具有潜在威胁的最小影响值。为了模拟眼眶壁骨折的纯“屈曲”机制,开发了两种不同的人类眼眶区域三维有限元(FE)模型:眼眶骨元素模型和眼眶骨、眼眶和眼内组织元素模型。根据针对眼眶骨小而脆弱标本进行的独特实验室拉伸应力测试以及使用文献中提供的数据,将所定义的数值颅骨碎片的力学性能应用于模型中。对具有显著弹性模量差异的物体之间的接触问题进行非线性瞬态分析,以研究瞬时损伤过程中不同物体之间的相互作用。在下眼眶壁以及两种 FEM 颅骨模型(7660N 和 8520N)的破坏性载荷值范围内发现了潜在的损伤区域。此外,通过将数值模拟与真实损伤的计算机断层扫描进行比较,对其进行了验证。

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