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The Effect of Fluid-structure Interaction in Finiteelement Analysis of Skull Bone on Relieving Cerebral Injury in a Porcine Model

机译:猪骨骼有限元分析中流固耦合对减轻猪模型脑损伤的影响

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Introduction: Bone tissue is non-homogeneous, porous and anisotropic. Compact bone contains a hierarchical structure of interconnected channels, and cancellous bone is the spongy construction with the biphasic of viscous fluid and elastic solid materials. Fluid flow in and out has also been suggested to play a role in the mechanosensory system of bone. Objective: To investigate the influence of interstitial fluid on the microstructural skeleton of compact and cancellous skull bone by finite-element simulation with the changing intracranial pressure. Methods: Scanning Electron Microscopy (SEM) was adopted to determine the microstructural parameters of fresh porcine skull bone, which used to create a microscopic model of skull bone subjected to a fluid-solid interaction analysis. Results: Simulations were performed with and without Fluid-Structure Interaction (FSI). The strain and stress rate of the skull-bone microstructure increased with the tissue fluid by 38.5% and 21.5%, respectively. Especially for compact skull bones, the microstructure strain and stress rate were greater by 1.42 to 2.49 times and 1.39 to 2.42 times, respectively, when the tissue fluid flow was included. Conclusion: In conclusion, the deformation of skull bone tissue is enhanced with the increase of interstitial fluid under the same pressure, which would absorb more impact on cerebral injury caused by intracranial hypertension. Conversely, the load-bearing of bone tissue is enhanced with the increase of solid bone skeleton under the same pressure. During the analysis on mechanical properties of skull bone with FSI, the compact and cancellous bones are not regarded as a single phase solid structure and the porous material characteristics must be considered.
机译:简介:骨组织不均匀,多孔且各向异性。紧密的骨头包含相互连接的通道的分层结构,而松质的骨头是海绵状结构,具有粘性流体和弹性固体材料的两相性。还建议流体流入和流出在骨骼的机械感觉系统中起作用。目的:通过颅内压变化的有限元模拟,研究组织液对致密和松质颅骨骨微结构骨架的影响。方法:采用扫描电子显微镜(SEM)测定新鲜猪头骨的显微结构参数,建立流质相互作用的头骨模型。结果:在有和没有流固耦合(FSI)的情况下进行了仿真。颅骨微结构的应变和应力率随组织液的增加分别增加了38.5%和21.5%。特别是对于致密的颅骨,当包括组织液流时,其微结构应变和应力率分别提高了1.42至2.49倍和1.39至2.42倍。结论:总的来说,在相同压力下,随着组织液的增加,颅骨组织的变形会增强,对颅内高压引起的脑损伤的吸收更大。相反,在相同压力下,随着实心骨骨架的增加,骨组织的承重得以增强。在用FSI分析颅骨的力学性能时,紧密骨和松质骨不被视为单相固体结构,必须考虑多孔材料的特性。

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