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首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Optimizing the deformation behavior of stent with nonuniform Poisson's ratio distribution for curved artery
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Optimizing the deformation behavior of stent with nonuniform Poisson's ratio distribution for curved artery

机译:优化弯曲动脉非均匀泊松比率分布的支架变形行为

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Stent implantation at a highly curved artery has always been a challenge, considering the relatively high chance of in-stent restenosis (ISR) caused by severe straightening effect and high strain energy over the vessel wall. In this paper, a novel optimization based design method was proposed to manipulate the deformation behavior of the common ring-and-link stent. By changing the location of the connection point between rings and links, traditional ring-and-link structure was modified to achiever tunable Poisson's ratio (PR). With the nonuniform cellular structure design method proposed in a previous study, PR distribution of the stent structure was optimized to achieve the desired curvature. As a result, the obtained stent structure with nonuniform PR could perfectly fit into the curved artery after expansion, without causing any obvious vessel straightening. To validate the proposed method, two different vessel models were introduced. Firstly, a short vessel with a constant curvature was set as the design objective, and both numerical and experimental tests were conducted. Further, a patient-specific vessel was applied. Both test results showed that optimized stents would cause much smaller vessel straightening. Moreover, vessels stented by the optimized structures had much lower stress concentration and strain energy. All those properties will decrease the possibility of ISR significantly.
机译:在高度弯曲的动脉处的支架植入一直是一项挑战,考虑到由血管壁上的严重矫直效果和高应变能引起的支架内再狭窄(ISR)的相对高的机会。本文提出了一种新颖的基于优化的设计方法来操纵公共环和连杆支架的变形行为。通过改变环和链接之间的连接点的位置,传统的环形链接结构被修改为实现可调泊松的比率(PR)。利用先前研究中提出的非均匀蜂窝结构设计方法,优化支架结构的PR分布以达到所需的曲率。结果,在膨胀后,具有非均匀PR的支架结构可以完全适合弯曲动脉,而不会引起任何明显的血管矫直。为了验证所提出的方法,介绍了两种不同的血管模型。首先,设定具有恒定曲率的短容器作为设计目标,并进行数值和实验测试。此外,施用患者特异性容器。这两个测试结果表明,优化的支架会造成较小的血管矫直。此外,优化结构支撑的血管具有较低的应力浓度和应变能量。所有这些属性都将显着降低ISR的可能性。

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