Bukala Jakub, Kwiatkowski Piotr, Malachowski Jerzy
Department of Mechanics and Applied Computer Science, Military University of Technology, Gen. Sylwestra Kaliskiego 2, Warsaw, 00-908, Poland.
Clinical Department of Interventional Cardiology, Central Clinical Hospital Ministry of Interior, Woloska 137, Warsaw, 02-507, Poland.
Int J Numer Method Biomed Eng. 2017 Dec;33(12). doi: 10.1002/cnm.2890. Epub 2017 May 31.
The paper presents an applied methodology for numerical finite element analysis of coronary stent crimping and the free inflation process with the use of a folded noncompliant angioplasty balloon. The use of an implicit scheme is considered as the most original part of the work, as an explicit finite element procedure is very often preferred. Hitherto, when the implicit solution was used for the finite element solution, the simulated issue was largely simplified. Therefore, the authors focused on the modelling methodology with minimum possible simplification, ie, a full load path (compression and inflation in single analysis), solid element discretization, and sophisticated contact models (bodies with highly different stiffness). The obtained results are partially compared with experimental data (radial force during the crimping procedure) and present satisfactory compliance. The authors believe that presented methodology allow for significant improvement of the obtained results, as well as potential extension of the research scope, compared to previous efforts performed using the explicit integration scheme. Moreover, the presented methodology is believed to be suitable for sensitivity and optimization studies.
本文介绍了一种应用方法,用于对使用折叠式非顺应性血管成形术球囊的冠状动脉支架压接和自由膨胀过程进行数值有限元分析。使用隐式格式被认为是这项工作最具创新性的部分,因为显式有限元方法通常更受青睐。迄今为止,当将隐式解用于有限元求解时,模拟问题在很大程度上被简化了。因此,作者专注于尽可能少简化的建模方法,即完整的载荷路径(单次分析中的压缩和膨胀)、实体单元离散化以及复杂的接触模型(具有高度不同刚度的物体)。将获得的结果部分与实验数据(压接过程中的径向力)进行了比较,结果显示出令人满意的一致性。作者认为,与之前使用显式积分格式进行的研究相比,所提出的方法能够显著改善所获得的结果,并有可能扩展研究范围。此外,所提出的方法被认为适用于敏感性和优化研究。