首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part H. Journal of Engineering in Medicine >The role of inelastic deformations in the mechanical response of endovascular shape memory alloy devices
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The role of inelastic deformations in the mechanical response of endovascular shape memory alloy devices

机译:内部变形在血管内记忆合金装置的机械响应中的作用

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Nickel-titanium alloys are commonly adopted for producing cardiovascular minimally invasive devices such as self-expandable stents, aortic valves and stent-grafts. These devices are subjected to cyclic loads (due to blood pulsatility, leg or heart movements), that can induce fatigue fracture, and may also be subjected to very large deformations (due to crimping procedure, a tortuous physiological path or overloads), that can induce material yield. Recently, the authors developed a new constitutive model that considers inelastic strains due to not-completed reverse phase transformation (not all the stress-induced martensite turns back to austenite) or/and plasticity and their accumulation during cyclic loads. In this article, the model is implemented in the finite element code ABAQUS/Standard and it is used to investigate the effects of inelastic strain accumulation on endovascular nickel-titanium devices. In particular, the behavior of a transcatheter aortic valve is studied considering the following steps: (1) crimping, (2) expansion in a tube resembling a durability test chamber and (3) cyclic loads due to pressure variation applied on the inner surface of the tube. The analyses are performed twice, activating and not activating that part of the new model which describes the development of irreversible strain. From the results, it is interesting to note that plasticity has a very significant effect on the local material response, inducing stress modification from compression to tension. However, permanent deformations are concentrated in few zones of the stent frame and their presence does not affect the global behavior of the device that maintains its capability of recovering the original shape. In conclusion, this work suggests that at least for cardiovascular devices where the crimping is high (local strain may reach values of 8%-9%), taking into account inelastic effects due to plasticity and not-completed reverse phase transformation can be important, and hence using a suitable constitutive model is recommended.
机译:通常采用镍 - 钛合金用于生产诸如自膨胀支架,主动脉瓣和支架移植物等心血管微创器件。这些装置经受循环载荷(由于血脉冲性,腿部或心脏运动),可以诱导疲劳骨折,并且也可以受到非常大的变形(由于压接程序,曲折的生理路径或过载),可以诱导物质产量。最近,作者开发了一种新的本构模型,其由于未完成的反相变换而认为无弹性菌株(并非所有应激诱导的马氏体转回奥氏体)或/和循环载荷期间的塑性以及它们的积累。在本文中,该模型在ABAQUS /标准的有限元码中实施,它用于研究血管内镍钛装置的无弹性应变积累的影响。特别地,考虑到以下步骤:(1)在类似于耐久性测试室的管中的压接,(2)膨胀,(3)循环负载,其由于施加在内表面上的压力变化管。分析进行两次,激活并不会激活描述不可逆应变的开发的新模型的那部分。从结果来看,有趣的是要注意,可塑性对局部材料响应具有非常显着的影响,从而引起压力压缩到张力。然而,永久变形集中在支架框架的几个区域中,并且它们的存在不会影响维持其恢复原始形状能力的整体行为。总之,这项工作表明,至少针对压接的心血管器件(局部应变可能达到8%-9%的值),考虑到由于可塑性和未完成的反相变换引起的无弹性效应可能是重要的,因此建议使用使用合​​适的本构模型。

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