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Multiphysics Hemodynamic Behavior of Polylactic Acid-Based Stent: A Coupled Simulation Approach

机译:多重物理量聚丙醇,聚乳酸纤维的血流动力学行为酸碱度支架:耦合仿真方法

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摘要

This study investigates the structural and hemodynamic behavior of bioresorbable polylactic acid (PLA)-based stent designs for applications in treating coronary artery disease. Three stent designs were chosen and their geometry was modeled in SolidWorks and appropriate meshing was done before importing into the finite element analysis platform(ansys). The behavior of the stent designs was analyzed for structural loading conditions equivalent to human arterial blood pressure and similarly, the hemodynamic analysis was carried out under conditions simulating the blood flow. The stent porosity, structural stresses, wall shear stresses (WSS) and the velocity were analyzed, and the results from this multiphysics analysis show that the stresses occurring in the modified cordis stent(MCS) design present a maximum von Mises stress (273.01 MPa). Besides, the maximum WSS of 12.67 Pa is obtained from the hemodynamic flow analysis. The current findings are in the line of literature data for the possible usage of PLA as stent materials that pose a reduced risk of restenosis.
机译:本研究探讨结构和血流动力学的行为bioresorbable聚丙醇,聚乳酸纤维酸(PLA)的支架设计的应用程序在治疗冠状动脉疾病。设计是选择和他们的几何建模在SolidWorks和适当啮合做过导入到有限元分析平台(ansys)。分析了支架的设计结构加载相当于人体动脉血液条件压力,同样,血流动力学分析条件下进行了模拟血液流动。压力,墙(WSS)和剪切应力速度进行了分析,从这个结果多重物理量分析表明,压力发生在修改后的心脏的支架(MCS)设计最大·冯·米塞斯应力(273.01MPa)。从血流动力学流分析获得。目前发现的文学数据的可能用法PLA支架材料构成降低再狭窄的风险。

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