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Flow physics of normal and abnormal bioprosthetic aortic valves

机译:正常和异常生物假体主动脉阀的流量物理学

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Flow physics of transvalvular flows in the aorta with bioprosthetic valves are investigated using computational modelling. For the efficient simulations of flow-structure-interaction in transvalvular flows, a simplified, reduced degree of freedom valve model is employed with a sharp interface immersed boundary based incompressible flow solver. Simulations are performed for normal as well as abnormal valves with reduced leaflet motion that models the effect of early leaflet thrombosis. The structure of the aortic jet and the hemodynamic stresses on the aortic wall are analysed to understand the hemodynamic impacts and possible long-term clinical implications of subclinical, reduced leaflet motion. The simulation results have shown that the reduced leaflet motion tilts the direction of aortic jet and generates stronger flow separation and re-attachment on the aortic wall downstream from the reduced motion leaflets. The modified flow pattern increases the wall pressure fluctuation and average wall shear stress on the downstream aortic wall, and results in the asymmetric oscillatory shear index distributions, which may have long-term clinical implications such as aortic wall damage and remodelling.
机译:使用计算建模研究了具有生物假体阀的主动脉内的经变性的流动物理学。为了高效模拟经瓣膜流动中的流动 - 结构相互作用,简化的减少的自由度阀模型采用尖锐的界面基于界面的基于界面的不可压缩流动求解器采用。模拟是对正常的以及异常阀门进行的,具有减小的宣传叶运动,模拟早期宣传型血栓形成的效果。分析主动脉射流和主动脉壁上的血流动力学应力的结构,以了解血流动力学影响以及亚临床,减少宣传叶运动的可能长期临床意义。仿真结果表明,减小的宣传叶运动倾向于主动脉射流的方向,并产生更强的流动分离并在下游的主动脉壁上重新附着在减小的运动叶上。改进的流动模式增加了下游主动脉壁上的壁压波动和平均壁剪切应力,并导致不对称的振荡剪切指数分布,这可能具有长期临床意义,例如主动脉壁损坏和重塑。

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