Intelligent Textile System Research Center, Department of Materials Science and Engineering, Seoul National University, 599 Gwanangno, Gwanak-gu, Seoul 151-742, Republic of Korea.
J Biomech. 2010 Mar 3;43(4):632-43. doi: 10.1016/j.jbiomech.2009.10.032. Epub 2009 Nov 10.
Polymeric stents can be considered as an alternative to metallic stents thanks to their lessened incidence of restenosis and controlled deployment. The purpose of this study was to investigate the feasibility of developing a temperature-responsive braided stent using shape memory polyurethane (SMPU) through finite element analysis. It was assumed that braided stents were manufactured using SMPU fibers. The mechanical behavior of SMPU fibers was modeled using a constitutive equation describing their one-dimensional thermal-induced shape memory behavior. Then, the braided stents were analyzed to investigate their mechanical behavior using finite element analysis software, in which the constitutive equation was implemented through a user material subroutine. The diameter of the SMPU fibers and braiding angle were chosen as the design parameters and their values were adjusted to ensure that the mechanical properties of the braided polymer stents match those of metallic stents. Finally, the deployment process of the braided stents inside narrowed vessels was simulated, showing that the SMPU stents can be comfortably implanted while minimizing the overpressure onto the vessel walls, due to their thermo-responsive shape memory behavior.
聚合物支架由于其较低的再狭窄发生率和可控制的扩张,可被视为金属支架的替代品。本研究旨在通过有限元分析探讨使用形状记忆聚氨酯(SMPU)开发温度响应编织支架的可行性。假设编织支架是由 SMPU 纤维制成的。使用描述其一维热致形状记忆行为的本构方程对 SMPU 纤维的力学行为进行建模。然后,使用有限元分析软件对编织支架进行分析,以研究其力学行为,其中本构方程通过用户材料子程序实现。SMPU 纤维的直径和编织角被选为设计参数,其值进行了调整,以确保编织聚合物支架的机械性能与金属支架相匹配。最后,模拟了编织支架在狭窄血管内的展开过程,结果表明,由于其热响应形状记忆行为,SMPU 支架可以舒适地植入,同时将对血管壁的过压最小化。