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Load-dispersing design with twined-spring geometry of a distensible intracranial stent for cerebral aneurysms

机译:具有双弹簧几何形状的可扩张颅内支架用于脑动脉瘤的负荷分散设计

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Endovascular stents are increasingly being used to treat cerebral aneurysms. Mechanically, a cerebrovascular stent must have a low radial stiffness to prevent vessel dissection and rupture. To minimize these complications, we need to consider a stent design that has a low radial force and disperses the load within the stented artery. Therefore, highly distensible, load-dispersion stent designs are desirable for intracranial stenting. This study focused on closed-cell stent geometries and calculated the differences in stress within the artery because of the structure by using finite-element modeling. The results showed that the design with hexagonal cell geometry stretched in the circumferential direction had lower radial and circumferential stresses than did the other models. Comparing the maximum radial stress of our models, stress reduction of 35% was obtained with this design. Moreover, its radial stress was 47 kPa, which was similar to the critical stress of 42 kPa assumed in this study. This stent model was characterized by narrow strut spacing and a large surface area, which was dominated by the twined-spring geometry. It had low radial and circumferential stresses and a dispersed stress distribution compared with the other models. Therefore, this design is a desirable load-dispersing design for cerebrovascular treatment.
机译:血管内支架越来越多地用于治疗脑动脉瘤。在机械上,脑血管支架必须具有较低的径向刚度,以防止血管解剖和破裂。为了使这些并发症最小化,我们需要考虑一种具有低径向力并分散支架动脉内负荷的支架设计。因此,颅内支架置入术需要高度可扩展,负荷分散的支架设计。这项研究的重点是闭孔支架的几何形状,并通过使用有限元建模计算了由于结构而引起的动脉内应力差异。结果表明,具有沿周向延伸的六边形单元几何结构的设计具有比其他模型更低的径向和周向应力。比较我们模型的最大径向应力,此设计可将应力降低35%。此外,其径向应力为47 kPa,与本研究假设的42 kPa的临界应力相似。该支架模型的特点是撑杆间距窄,表面积大,这主要由双弹簧几何结构决定。与其他模型相比,它具有较低的径向和圆周应力以及分散的应力分布。因此,该设计是用于脑血管治疗的理想的负荷分散设计。

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