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首页> 外文期刊>Annals of Biomedical Engineering >Finite Element Shape Optimization for Biodegradable Magnesium Alloy Stents
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Finite Element Shape Optimization for Biodegradable Magnesium Alloy Stents

机译:可生物降解镁合金支架的有限元形状优化

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摘要

Biodegradable magnesium alloy stents (MAS) are a promising solution for long-term adverse events caused by interactions between vessels and permanent stent platforms of drug eluting stents. However, the existing MAS showed severe lumen loss after a few months: too short degradation time may be the main reason for this drawback. In this study, a new design concept of MAS was proposed and a shape optimization method with finite element analysis was applied on two-dimensional (2D) stent models considering four different magnesium alloys: AZ80, AZ31, ZM21, and WE43. A morphing procedure was utilized to facilitate the optimization. Two experiments were carried out for a preliminary validation of the 2D models with good results. The optimized designs were compared to an existing MAS by means of three-dimensional finite element analysis. The results showed that the final optimized design with alloy WE43, compared to the existing MAS, has an increased strut width by approximately 48%, improved safety properties (decreased the maximum principal stress after recoil with tissue by 29%, and decreased the maximum principal strain during expansion by 14%) and improved scaffolding ability (increased by 24%). Accordingly, the degradation time can be expected to extend. The used methodology provides a convenient and practical way to develop novel MAS designs.
机译:可生物降解的镁合金支架(MAS)是解决因药物洗脱支架的血管和永久支架平台之间的相互作用而引起的长期不良事件的有希望的解决方案。但是,现有的MAS在几个月后显示出严重的流明损失:降解时间过短可能是造成此缺点的主要原因。在这项研究中,提出了一种新的MAS设计概念,并在考虑了四种不同镁合金:AZ80,AZ31,ZM21和WE43的二维(2D)支架模型上采用了一种具有有限元分析的形状优化方法。利用变形过程来促进优化。进行了两个实验,对二维模型进行了初步验证,并取得了良好的效果。通过三维有限元分析将优化设计与现有的MAS进行比较。结果表明,与现有的MAS相比,采用WE43合金进行的最终优化设计具有大约48%的支杆宽度,改进的安全性(组织回缩后的最大主应力降低了29%,最大主应力降低了)膨胀时的最大应力增加了14%)和改进的脚手架能力(提高了24%)。因此,可以预期降解时间会延长。所使用的方法为开发新颖的MAS设计提供了方便实用的方法。

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