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Analytical methods for braided stents design and comparison with FEA

机译:编织支架设计的分析方法与FEA的比较

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摘要

Braiding technology is nowadays commonly adopted to build stent-like devices. Indeed, these endoprostheses, thanks to their typical great flexibility and kinking resistance, find several applications in mini-invasive treatments, involving but not limiting to the cardiovascular field. The design process usually involves many efforts and long trial and error processes before identifying the best combination of manufacturing parameters. This paper aims to provide analytical tools to support the design and optimization phases: the developed equations, based on few geometrical parameters commonly used for describing braided stents and material stiffness, are easily implementable in a worksheet and allow predicting the radial rigidity of braided stents, also involving complex features such as multiple twists and looped ends, and the diameter variation range. Finite element simulations, previously validated with respect to experimental tests, were used as a comparator to prove the reliability of the analytical results. The illustrated tools can assess the impact of each selected parameter modification and are intended to guide the optimal selection of geometrical and mechanical stent proprieties to obtain the desired radial rigidity, deliverability (minimum diameter), and, if forming processes are planned to modify the shape of the stent, the required diameter variations (maximum and minimum diameters).
机译:编织技术现在被普遍用于制造支架状设备。事实上,由于其典型的高度灵活性和抗扭结性,这些内支架在微创治疗中有多种应用,涉及但不限于心血管领域。在确定制造参数的最佳组合之前,设计过程通常涉及许多工作和长期的试错过程。本文旨在提供支持设计和优化阶段的分析工具:所开发的方程基于描述编织支架和材料刚度常用的几个几何参数,易于在工作表中实现,并允许预测编织支架的径向刚度,还涉及复杂特征,如多个扭曲和环形端,直径变化范围。有限元模拟(先前已通过实验测试验证)用作比较器,以证明分析结果的可靠性。图示工具可以评估每个选定参数修改的影响,并用于指导几何和机械支架性能的最佳选择,以获得所需的径向刚度、可交付性(最小直径),以及如果计划成形过程来修改支架形状,所需的直径变化(最大和最小直径)。

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