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通过模拟台架试验比较常见几何平台上的冠状动脉支架材料性能。

Comparing coronary stent material performance on a common geometric platform through simulated bench testing.

机构信息

Biomechanics Research Centre (BMEC), Mechanical and Biomedical Engineering, College of Engineering and Informatics, National University of Ireland, Galway, Ireland.

出版信息

J Mech Behav Biomed Mater. 2012 Aug;12:129-38. doi: 10.1016/j.jmbbm.2012.02.013. Epub 2012 Mar 3.

Abstract

Absorbable metallic stents (AMSs) are a newly emerging cardiovascular technology which has the potential to eliminate long-term patient health risks associated with conventional permanent stents. AMSs developed to date have consisted of magnesium alloys or iron, materials with inferior mechanical properties to those used in permanent stents, such as stainless steel and cobalt-chromium alloys. However, for AMSs to be feasible for widespread clinical use it is important that their performance is comparable to modern permanent stents. To date, the performances of magnesium, iron, and permanent stent materials have not been compared on a common stent platform for a range of stent performance metrics, such as flexibility, radial strength, and recoil. In this study, this comparison is made through simulated bench testing, based on finite-element modelling. The significance of this study is that it allows potential limitations in current AMS performance to be identified, which will aid in focusing future AMS design. This study also allows the identification of limitations in current AMS materials, thereby informing the on-going development of candidate biodegradable alloys. The results indicate that the AMSs studied here can match the recoil characteristics and radial strength of modern permanent stents; however, to achieve this, larger strut dimensions are required. It is also predicted that the AMSs studied are inferior to permanent stents in terms of maximum absolute curvature and longitudinal stiffness.

摘要

可吸收金属支架(AMS)是一种新兴的心血管技术,有可能消除与传统永久性支架相关的长期患者健康风险。迄今为止开发的 AMS 由镁合金或铁制成,其机械性能不如永久性支架中使用的材料(例如不锈钢和钴铬合金)。但是,为了使 AMS 广泛应用于临床,重要的是其性能可与现代永久性支架相媲美。迄今为止,尚未在共同的支架平台上针对各种支架性能指标(例如柔韧性,径向强度和回缩)对镁,铁和永久性支架材料的性能进行比较。在这项研究中,通过基于有限元建模的模拟台式测试进行了这种比较。这项研究的意义在于,可以确定当前 AMS 性能的潜在局限性,这将有助于集中精力进行未来的 AMS 设计。本研究还可以确定当前 AMS 材料的局限性,从而为候选可生物降解合金的持续开发提供信息。结果表明,这里研究的 AMS 可以匹配现代永久性支架的回缩特性和径向强度;但是,要实现这一点,需要更大的支柱尺寸。还预测,在最大绝对曲率和纵向刚度方面,所研究的 AMS 劣于永久性支架。

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