Avrahami Idit, Rosenfeld Moshe, Raz Sagi, Einav Shmuel
Option of Bioengineering, California Institute of Technology, Pasadena, California 91125, U.S.A.
Artif Organs. 2006 Jul;30(7):529-38. doi: 10.1111/j.1525-1594.2006.00255.x.
This article addresses the growing need for comprehensive tools to investigate the hemodynamics of ventricular assist devices (VADs) in general and sac-type VADs in particular. Numerical simulations can be very helpful in these efforts. However, full simulation of flow inside sac-type VADs poses several key problems, among them simulation of the mechanical heart valves and calculation of the motion of flexible walls. We present a simplified three-dimensional (3D) numerical model of a sac-VAD chamber. The walls in the simplified model are defined to move according to experimental measurements, and the valves are modeled in fully open or fully closed positions. The model is validated by comparison to a fully coupled fluid-structure interaction numerical simulation and to experimental measurements using continuous digital particle image velocimetry. Our results demonstrate that the flexible wall motion is sensitive to changes in pressure distribution inside the chamber. However, small variations in wall motion do not significantly affect the global features of flow inside the chamber. Therefore, the simplified model can be used to predict the 3D time-dependent flow field in the VAD.
本文探讨了对综合工具的需求日益增长的问题,这些工具用于总体研究心室辅助装置(VAD)的血液动力学,特别是囊式VAD的血液动力学。数值模拟在这些工作中非常有帮助。然而,对囊式VAD内部流动进行全面模拟存在几个关键问题,其中包括机械心脏瓣膜的模拟以及柔性壁运动的计算。我们提出了一种囊式VAD腔室的简化三维(3D)数值模型。简化模型中的壁被定义为根据实验测量结果移动,并且瓣膜被建模为处于完全打开或完全关闭位置。通过与完全耦合的流固相互作用数值模拟以及使用连续数字粒子图像测速技术的实验测量结果进行比较,对该模型进行了验证。我们的结果表明,柔性壁运动对腔室内压力分布的变化敏感。然而,壁运动的微小变化不会显著影响腔室内流动的整体特征。因此,简化模型可用于预测VAD中随时间变化的三维流场。