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A patient-specific aortic valve model based on moving resistive immersed implicit surfaces

机译:基于移动电阻式浸入式隐式表面的患者特定主动脉瓣模型

摘要

In this paper, we propose a full computational framework to simulate the hemodynamics in the aorta including the valve. Closed and open valve surfaces, as well as the lumen aorta, are reconstructed directly from medical images using new ad hoc algorithms, allowing a patient-specific simulation. The fluid dynamics problem that accounts from the movement of the valve is solved by a new 3D–0D fluid–structure interaction model in which the valve surface is implicitly represented through level set functions, yielding, in the Navier–Stokes equations, a resistive penalization term enforcing the blood to adhere to the valve leaflets. The dynamics of the valve between its closed and open position is modeled using a reduced geometric 0D model. At the discrete level, a finite element formulation is used and the SUPG stabilization is extended to include the resistive term in the Navier–Stokes equations. Then, after time discretization, the 3D fluid and 0D valve models are coupled through a staggered approach. This computational framework, applied to a patient-specific geometry and data, allows to simulate the movement of the valve, the sharp pressure jump occurring across the leaflets, and the blood flow pattern inside the aorta.
机译:在本文中,我们提出了一个完整的计算框架来模拟包括瓣膜在内的主动脉的血流动力学。使用新的特设算法直接从医学图像中重建关闭和打开的瓣膜表面以及内腔主动脉,从而可以进行针对特定患者的模拟。通过阀的运动解决的流体动力学问题通过新的3D-0D流体-结构相互作用模型得以解决,在该模型中,通过水平集函数隐式表示了阀表面,并在Navier-Stokes方程中产生了阻力惩罚强制血液粘附在瓣叶上的术语。使用简化的几何0D模型对阀门在关闭位置和打开位置之间的动力学进行建模。在离散级别上,使用了有限元公式,并且SUPG稳定性得到扩展,以将电阻项包括在Navier–Stokes方程中。然后,在时间离散后,将3D流体和0D阀门模型通过交错方法进行耦合。该计算框架应用于患者特定的几何形状和数据,可以模拟瓣膜的运动,在小叶上发生的急剧压力跳跃以及主动脉内的血流模式。

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