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首页> 外文期刊>Computational Mechanics: Solids, Fluids, Fracture Transport Phenomena and Variational Methods >Wall shear stress calculations in space-time finite element computation of arterial fluid-structure interactions
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Wall shear stress calculations in space-time finite element computation of arterial fluid-structure interactions

机译:时空有限元计算中的壁剪应力计算

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摘要

The stabilized space-time fluid-structure interaction (SSTFSI) technique was applied to arterial FSI problems soon after its development by the Team for Advanced Flow Simulation and Modeling. The SSTFSI technique is based on the Deforming-Spatial-Domain/Stabilized Space-Time (DSD/SST) formulation and is supplemented with a number of special techniques developed for arterial FSI. The special techniques developed in the recent past include a recipe for pre-FSI computations that improve the convergence of the FSI computations, using an estimated zero-pressure arterial geometry, Sequentially Coupled Arterial FSI technique, using layers of refined fluid mechanics mesh near the arterial walls, and a special mapping technique for specifying the velocity profile at inflow boundaries with non-circular shape. In this paper we introduce some additional special techniques, related to the projection of fluid-structure interface stresses, calculation of the wall shear stress (WSS), and calculation of the oscillatory shear index. In the test computations reported here, we focus on WSS calculations in FSI modeling of a patient-specific middle cerebral artery segment with aneurysm. Two different structural mechanics meshes and three different fluid mechanics meshes are tested to investigate the influence of mesh refinement on the WSS calculations.
机译:先进的流动模拟和建模小组在开发后不久,将稳定的时空流固耦合技术(SSTFSI)应用于动脉FSI问题。 SSTFSI技术基于变形空间域/稳定时空(DSD / SST)公式,并补充了为动脉FSI开发的许多特殊技术。最近开发的特殊技术包括用于FSI之前计算的方法,该方法可使用估计的零压力动脉几何形状来改善FSI计算的收敛性,采用顺序耦合的动脉FSI技术,使用靠近动脉的精细流体力学网格层壁,以及一种特殊的映射技术,用于指定非圆形流入边界处的速度分布。在本文中,我们介绍了一些附加的特殊技术,这些技术涉及流体-结构界面应力的投影,壁面剪应力(WSS)的计算以及振荡剪切指数的计算。在这里报告的测试计算中,我们将重点放在患者特定的大脑中动脉段伴有动脉瘤的FSI建模中的WSS计算中。测试了两个不同的结构力学网格和三个不同的流体力学网格,以研究网格细化对WSS计算的影响。

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