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Functionality of a Novel Percutaneous Aortic Valve Stent - A Fracture Mechanics Study

机译:新型经皮主动脉瓣支架的功能-断裂力学研究

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摘要

To design against mechanical failure, most implants such as valve stents are assessed on the basis of survival on a long term. However, accurate investigation of the stress/ strain distributions in such valve stents, which govern their deformation and fracture behavior, is essential for their prolonged, and safe use. Nitinol, a shape-memory alloy, can "remember" a previous shape and can recover strains as high as 10% by deformation (super-elasticity) or temperature change. As such, deformation mechanisms of Nitinol are more complex than the conventional modes of plastic deformation in traditional alloys. Consequently, the mechanical behavior of Nitinol under multi-axial conditions remains poorly understood. With this background, an S-N type fatigue analysis was done on three stents with Von Mises stress component having the infinite life at l.e+008. The results of this study may aid biomedical scientist to zero in on the material that could be used to analyse and fabricate percutaneous valve stents.
机译:为了设计以防止机械故障,大多数植入物(例如瓣膜支架)是根据长期生存情况进行评估的。然而,对于这样的瓣膜支架,控制其变形和断裂行为的应力/应变分布的精确研究对于延长和安全使用是必不可少的。镍钛诺是一种形状记忆合金,可以“记住”以前的形状,并且可以通过变形(超弹性)或温度变化恢复高达10%的应变。这样,镍钛诺的变形机理比传统合金中塑性变形的常规模式更为复杂。因此,对镍钛诺在多轴条件下的机械性能仍然知之甚少。在这种背景下,对三个支架进行了S-N型疲劳分析,这些支架的Von Mises应力分量在l + e + 008时具有无限的寿命。这项研究的结果可能有助于生物医学科学家将可用于分析和制造经皮瓣膜支架的材料归零。

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