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惠特利主动脉瓣的三维流固耦合模拟。

Three-dimensional fluid-structure interaction simulation of the Wheatley aortic valve.

机构信息

Instituto de Ciências Matemáticas e de Computação-ICMC, Universidade de São Paulo-Campus de São Carlos, Avenida Trabalhador São-Carlense, São Carlos, Brazil.

ANSYS Inc., Livermore, California, USA.

出版信息

Int J Numer Method Biomed Eng. 2024 Feb;40(2):e3792. doi: 10.1002/cnm.3792. Epub 2023 Nov 27.

Abstract

Valvular heart diseases (such as stenosis and regurgitation) are recognized as a rapidly growing cause of global deaths and major contributors to disability. The most effective treatment for these pathologies is the replacement of the natural valve with a prosthetic one. Our work considers an innovative design for prosthetic aortic valves that combines the reliability and durability of artificial valves with the flexibility of tissue valves. It consists of a rigid support and three polymer leaflets which can be cut from an extruded flat sheet, and is referred to hereafter as the Wheatley aortic valve (WAV). As a first step towards the understanding of the mechanical behavior of the WAV, we report here on the implementation of a numerical model built with the ICFD multi-physics solver of the LS-DYNA software. The model is calibrated and validated using data from a basic pulsatile-flow experiment in a water-filled straight tube. Sensitivity to model parameters (contact parameters, mesh size, etc.) and to design parameters (height, material constants) is studied. The numerical data allow us to describe the leaflet motion and the liquid flow in great detail, and to investigate the possible failure modes in cases of unfavorable operational conditions (in particular, if the leaflet height is inadequate). In future work the numerical model developed here will be used to assess the thrombogenic properties of the valve under physiological conditions.

摘要

瓣膜性心脏病(如狭窄和反流)被认为是全球死亡人数迅速增加的原因之一,也是导致残疾的主要原因。治疗这些病变的最有效方法是用人造瓣膜替换天然瓣膜。我们的工作考虑了一种用于主动脉瓣假体的创新设计,该设计将人造瓣膜的可靠性和耐用性与组织瓣膜的灵活性相结合。它由一个刚性支架和三个聚合物瓣叶组成,可以从挤出的平板上切割下来,此后称为惠特利主动脉瓣(WAV)。作为了解 WAV 机械行为的第一步,我们在此报告了使用 LS-DYNA 软件的 ICFD 多物理场求解器构建的数值模型的实现。该模型使用充满水的直管中的基本脉动流实验数据进行了校准和验证。研究了模型参数(接触参数、网格尺寸等)和设计参数(高度、材料常数)的敏感性。数值数据允许我们详细描述瓣叶运动和液体流动,并研究在不利操作条件下(特别是如果瓣叶高度不足)的可能失效模式。在未来的工作中,将使用这里开发的数值模型来评估瓣膜在生理条件下的血栓形成特性。

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