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支架径向力对展开后应力模式的影响:一项有限元研究

Effect of Stent Radial Force on Stress Pattern After Deployment: A Finite Element Study.

作者信息

Borghi Alessandro, Murphy Olive, Bahmanyar Reza, McLeod Chris

机构信息

Institute of Child Health, University College London, London, UK.

Institute of Biomedical Engineering, Imperial College London, London, UK.

出版信息

J Mater Eng Perform. 2014;23(7):2599-2605. doi: 10.1007/s11665-014-0913-z. Epub 2014 Feb 26.

Abstract

The present article presents a method for assessing the radial stiffness of nitinol stents. An idealized stent model was created, and its radial stiffness was calculated by means of finite element modeling. The calculations were validated against experimental measurements. The variation of radial stiffness with geometrical dimensions was calculated, and the effect of increasing radial stiffness on endovascular deployment was analyzed. Peak tensile and compressive stresses as well as stent penetration were calculated in the case of an idealized pulmonary artery model having realistic dimensions as well as stiffness. The results of stress calculations were compared with a second set of simulations, where an idealized behavior of the stent (uniform expansion to a theoretical contact diameter) was modeled. The results show how in reality nitinol stents behave in a non-ideal way, having a non-uniform expansion and exerting non-uniform pressure on the contact areas with the artery. Such non-ideality decreases though with the increase in radial stiffness. The radial force alone may be insufficient in describing the stent-artery interaction, and numerical modeling proves to be necessary for capturing such complexity.

摘要

本文介绍了一种评估镍钛诺支架径向刚度的方法。创建了一个理想化的支架模型,并通过有限元建模计算其径向刚度。计算结果与实验测量值进行了验证。计算了径向刚度随几何尺寸的变化,并分析了增加径向刚度对血管内展开的影响。在具有实际尺寸和刚度的理想化肺动脉模型中,计算了峰值拉伸和压缩应力以及支架穿透情况。将应力计算结果与另一组模拟结果进行了比较,在该模拟中对支架的理想化行为(均匀扩张至理论接触直径)进行了建模。结果表明,实际上镍钛诺支架的行为并不理想,其扩张不均匀,并且在与动脉的接触区域施加不均匀的压力。不过,这种非理想性会随着径向刚度的增加而降低。仅径向力可能不足以描述支架与动脉的相互作用,数值建模对于捕捉这种复杂性被证明是必要的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/08a6/4102392/02764d307895/11665_2014_913_Fig1_HTML.jpg

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