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Review on Simulation and Evaluation of Intravascular Prosthetic Device Using Finite Element Method and Computational Fluid Dynamics and Application to Simulate Aneurysm Formation

机译:用有限元法和计算流体动力学和应用析血管假体装置的仿真与评价综述及其模拟动脉瘤形成

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This paper is a review of applications of Finite Element Method (FEM) and Computational Fluid Dynamics (CFD) to evaluate design and performance of intravascular prosthetic devices used clinically today. This study is focused on devices such as stents, flow diverters and heart valves. A stent is a device with mesh which is placed in stenosed blood vessels to overcome flow constriction. Vascular injury and restenosis are two major drawbacks with stenting treatment. Flow diverter is a mesh structure similar to a stent which is passed across the aneurysm neck to divert blood flow from the aneurysm, allowing it to occlude over time. This technique has proven successful in many challenging aneurysm cases, post treatment hemorrhage is a serious problem reported. Mechanical heart valve is placed into the heart to replace malfunction valve. Structural failure of these valves has been reported in many patients. Numerical simulation of such devices can provide important insights about their failure. Finite element method and computational fluid dynamics are the most popular simulation techniques used for this purpose. Many researchers have studied such simulations on these prosthetic devices. It includes modeling of stent to study its mechanical behavior, modeling of deployment and expansion of flow diverter, simulation of heart valve closure etc. Studies on biological condition simulation such as blood flow simulation in human aorta, multidimensional modeling of carotid artery blood flow etc. are also discussed in brief. Similar simulations needs to be conducted on occlusion devices used for Ventricular Septal Defect, Patent Ductus Arteriosus, Atrial Septal Defect, Patient Foramen Ovale etc. to evaluate their performance and reduce their failure in future. We apply this for the first time to show ballooning of an aneurysm,
机译:本文是对有限元方法(FEM)和计算流体动力学(CFD)的应用综述,以评估当今临床上使用的血管内假体装置的设计和性能。本研究专注于等设备,如支架,流动分流器和心脏瓣膜。支架是具有网状物的装置,该装置被放置在狭窄的血管中以克服流量收缩。血管损伤和再狭窄是两种主要缺点,具有支架治疗。流动转向器是类似于一支支架的网状结构,该支架通过动脉瘤颈部来转移动脉瘤的血流,使其随时间闭塞。这种技术在许多挑战性动脉瘤病例中成功,后处理出血是报告的严重问题。机械心阀放入心脏中以取代故障阀。许多患者报告了这些阀门的结构失效。这些设备的数值模拟可以对其失败提供重要的见解。有限元方法和计算流体动力学是用于此目的的最流行的仿真技术。许多研究人员在这些假肢装置上研究了这种模拟。它包括研究其力学行为的支架建模,部署建模和流动分解器的扩展,心脏瓣膜闭合等的模拟。生物状况模拟的研究人体主动脉血流模拟,颈动脉血流的多维建模等。还简要讨论过。需要在用于心室隔膜缺损的闭塞装置上进行类似的模拟,专利导管术,心房隔膜缺损,患者孔卵巢等,以评估它们的性能并降低未来的失败。我们首次申请这一点来显示动脉瘤的气球,

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