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Enhancement of Mechanical Properties and Testing of Nitinol Stents in Cerebral Aneurysm Simulation Models

机译:脑动脉瘤模拟模型中力学性能的增强和镍钛诺支架的测试

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摘要

Stents are promising medical devices widely used in the prevention of cerebral aneurysm rupture. As the performance of stents depends on their mechanical properties and cell configuration, the aim of this study was to optimize the stent design and test the hemodynamic properties by using computational solid mechanics and computational fluid dynamics. In order to test their performance, computer-based cerebral aneurysm models that mimic the conditions present after implantation into the human brain were tested. The strut configuration selected was the closed-cell type, and nitinol was chosen as the material for stent manufacture because the innate characteristics of this material increase stent flexibility. Three ideal sample stent types with different cell configurations were manufactured. Computational solid mechanics analysis of the sample stents showed over 30% difference in flexibility between stents. Furthermore, using a cerebral aneurysm model simulation, we found that the stents eased the hemodynamic factors of the cerebral aneurysm and lessened the flow velocity influx into the sac. A decrease in flow velocity led to a 50-60% reduction in wall shear stress, which is expected to prevent aneurysm rupture under clinical conditions. Stent design optimization was carried out by simulation and electropolishing. Corrosion resistance and surface roughness were evaluated after electropolishing performed under variable conditions, but 40V and 10s were the most optimal.
机译:支架是有前景的医疗器械,广泛用于预防脑动脉瘤破裂。由于支架的性能取决于其机械性能和细胞结构,因此本研究的目的是通过使用计算固体力学和计算流体动力学来优化支架设计并测试血液动力学特性。为了测试其性能,测试了模拟人脑植入后出现的状况的基于计算机的脑动脉瘤模型。选择的支杆配置为闭孔型,并且选择镍钛诺作为支架制造的材料,因为这种材料的固有特性会增加支架的柔韧性。制造了三种具有不同单元结构的理想样品支架类型。对样品支架的计算固体力学分析表明,支架之间的柔韧性差异超过30%。此外,使用脑动脉瘤模型模拟,我们发现支架可缓解脑动脉瘤的血流动力学因素,并减少流入囊的流速。流速降低导致壁切应力降低50-60%,这有望在临床条件下防止动脉瘤破裂。通过仿真和电抛光进行了支架设计优化。在可变条件下进行电抛光后,评估其耐腐蚀性和表面粗糙度,但最佳电压为40V和10s。

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