首页> 外文期刊>Journal of Biomechanics >Dynamic modelling of prosthetic chorded mitral valves using the immersed boundary method.
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Dynamic modelling of prosthetic chorded mitral valves using the immersed boundary method.

机译:使用浸入边界法对假体二尖瓣弦进行动态建模。

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摘要

Current artificial heart valves either have limited lifespan or require the recipient to be on permanent anticoagulation therapy. In this paper, effort is made to assess a newly developed bileaflet valve prosthesis made of synthetic flexible leaflet materials, whose geometry and material properties are based on those of the native mitral valve, with a view to providing superior options for mitral valve replacement. Computational analysis is employed to evaluate the geometric and material design of the valve, by investigation of its mechanical behaviour and unsteady flow characteristics. The immersed boundary (IB) method is used for the dynamic modelling of the large deformation of the valve leaflets and the fluid-structure interactions. The IB simulation is first validated for the aortic prosthesis subjected to a hydrostatic loading. The predicted displacement fields by IB are compared with those obtained using ANSYS, as well as with experimental measurements. Good quantitative agreement is obtained. Moreover, known failure regions of aortic prostheses are identified. The dynamic behaviour of the valve designs is then simulated under four physiological pulsatile flows. Experimental pressure gradients for opening and closure of the valves are in good agreement with IB predictions for all flow rates for both aortic and mitral designs. Importantly, the simulations predicted improved physiological haemodynamics for the novel mitral design. Limitation of the current IB model is also discussed. We conclude that the IB model can be developed to be an extremely effective dynamic simulation tool to aid prosthesis design.
机译:当前的人造心脏瓣膜寿命有限或需要接受者进行永久性抗凝治疗。在本文中,努力评估由合成的柔性小叶材料制成的新开发的双叶瓣假体,其几何形状和材料特性基于天然二尖瓣的几何形状和材料特性,以期为二尖瓣置换提供更好的选择。通过研究其机械性能和非稳态流动特性,采用计算分析来评估阀门的几何和材料设计。浸入边界(IB)方法用于对瓣叶的大变形和流固耦合进行动态建模。 IB仿真首先针对承受静水负荷的主动脉假体进行验证。将IB预测的位移场与使用ANSYS获得的位移场以及实验测量值进行比较。获得了良好的定量一致性。此外,确定了主动脉假体的已知失效区域。然后在四种生理脉动流下模拟阀设计的动态行为。对于主动脉和二尖瓣设计的所有流速,用于瓣膜打开和关闭的实验压力梯度与IB预测非常吻合。重要的是,模拟预测了新颖的二尖瓣设计改善的生理血流动力学。还讨论了当前IB模型的局限性。我们得出的结论是,可以将IB模型开发为一种非常有效的动态仿真工具,以帮助进行假体设计。

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