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Fluid Structural Analysis of Human Cerebral Aneurysm Using Their Own Wall Mechanical Properties

机译:利用自身壁力学特性分析人脑动脉瘤的流体结构

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摘要

Computational Structural Dynamics (CSD) simulations, Computational Fluid Dynamics (CFD) simulation, and Fluid Structure Interaction (FSI) simulations were carried out in an anatomically realistic model of a saccular cerebral aneurysm with the objective of quantifying the effects of type of simulation on principal fluid and solid mechanics results. Eight CSD simulations, one CFD simulation, and four FSI simulations were made. The results allowed the study of the influence of the type of material elements in the solid, the aneurism's wall thickness, and the type of simulation on the modeling of a human cerebral aneurysm. The simulations use their own wall mechanical properties of the aneurysm. The more complex simulation was the FSI simulation completely coupled with hyperelastic Mooney-Rivlin material, normal internal pressure, and normal variable thickness. The FSI simulation coupled in one direction using hyperelastic Mooney-Rivlin material, normal internal pressure, and normal variable thickness is the one that presents the most similar results with respect to the more complex FSI simulation, requiring one-fourth of the calculation time.
机译:计算结构动力学(CSD)模拟,计算流体动力学(CFD)模拟和流体结构相互作用(FSI)模拟在囊状脑动脉瘤的解剖学现实模型中进行,目的是量化模拟类型对主体的影响流体和固体力学结果。进行了八个CSD模拟,一个CFD模拟和四个FSI模拟。结果允许研究固体中材料元素的类型,动脉瘤的壁厚以及模拟类型对人脑动脉瘤建模的影响。模拟使用其自身的动脉瘤壁力学特性。更为复杂的模拟是FSI模拟,该模拟完全与超弹性Mooney-Rivlin材料,正常内部压力和正常可变厚度相结合。与超复杂的FSI仿真相比,使用超弹性Mooney-Rivlin材料,法向内部压力和法向可变厚度在一个方向上进行FSI仿真的结果最相似,需要四分之一的计算时间。

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