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Multiscale sequentially-coupled arterial FSI technique

机译:多尺度顺序耦合动脉FSI技术

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Multiscale versions of the Sequentially-Coupled Arterial Fluid–Structure Interaction (SCAFSI) technique are presented. The SCAFSI technique was introduced as an approximate FSI approach in arterial fluid mechanics. It is based on the assumption that the arterial deformation during a cardiac cycle is driven mostly by the blood pressure. First we compute a “reference” arterial deformation as a function of time, driven only by the blood pressure profile of the cardiac cycle. Then we compute a sequence of updates involving mesh motion, fluid dynamics calculations, and recomputing the arterial deformation. The SCAFSI technique was developed and tested in conjunction with the stabilized space–time FSI (SSTFSI) technique. Beyond providing a computationally more economical alternative to the fully coupled arterial FSI approach, the SCAFSI technique brings additional flexibility, such as being able to carry out the computations in a spatially or temporally multiscale fashion. In the test computations reported here for the spatially multiscale versions of the SCAFSI technique, we focus on a patient-specific middle cerebral artery segment with aneurysm, where the arterial geometry is based on computed tomography images. The arterial structure is modeled with the continuum element made of hyperelastic (Fung) material.
机译:介绍了顺序耦合的动脉液-结构相互作用(SCAFSI)技术的多尺度版本。 SCAFSI技术是作为动脉流体力学中的近似FSI方法引入的。它基于这样的假设,即在心动周期中的动脉变形主要由血压驱动。首先,我们计算“参考”动脉变形随时间的变化,仅受心动周期的血压曲线驱动。然后,我们计算一系列更新,包括网格运动,流体动力学计算以及重新计算动脉变形。 SCAFSI技术是与稳定的时空FSI(SSTFSI)技术一起开发和测试的。除了为完全耦合的动脉FSI方法提供在计算上更经济的替代方案之外,SCAFSI技术还带来了额外的灵活性,例如能够以空间或时间上的多尺度方式执行计算。在此处报告的针对SCAFSI技术的空间多尺度版本的测试计算中,我们重点研究具有动脉瘤的患者特定的大脑中动脉段,其中动脉的几何结构基于计算机断层扫描图像。用由超弹性(Fung)材料制成的连续体模型对动脉结构进行建模。

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