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首页> 外文期刊>Computational Mechanics: Solids, Fluids, Fracture Transport Phenomena and Variational Methods >Heart valve isogeometric sequentially-coupled FSI analysis with the space-time topology change method
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Heart valve isogeometric sequentially-coupled FSI analysis with the space-time topology change method

机译:心阀ISoGeometric顺序耦合FSI分析与时空拓扑改变方法

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Heart valve fluid-structure interaction (FSI) analysis is one of the computationally challenging cases in cardiovascular fluid mechanics. The challenges include unsteady flow through a complex geometry, solid surfaces with large motion, and contact between the valve leaflets. We introduce here an isogeometric sequentially-coupled FSI (SCFSI) method that can address the challenges with an outcome of high-fidelity flow solutions. The SCFSI analysis enables dealing with the fluid and structure parts individually at different steps of the solutions sequence, and also enables using different methods or different mesh resolution levels at different steps. In the isogeometric SCFSI analysis here, the first step is a previously computed (fully) coupled Immersogeometric Analysis FSI of the heart valve with a reasonable flow solution. With the valve leaflet and arterial surface motion coming from that, we perform a new, higher-fidelity fluid mechanics computation with the space-time topology change method and isogeometric discretization. Both the immersogeometric and space-time methods are variational multiscale methods. The computation presented for a bioprosthetic heart valve demonstrates the power of the method introduced.
机译:心脏瓣膜流体结构相互作用(FSI)分析是心血管流体力学的计算挑战性案例之一。挑战包括通过复杂的几何形状,具有大运动的固体表面的不稳定流动,并在阀门叶之间接触。我们在这里介绍一个ISogeometric序贯耦合的FSI(SCFSI)方法,可以解决具有高保真流解决方案的结果的挑战。 SCFSI分析使得能够在解决方案序列的不同步骤中单独处理流体和结构部件,并且还可以在不同步骤中使用不同的方法或不同的网格分辨率。在此处的ISogeometric SCFSI分析中,第一步是先前计算的(完全)耦合的心瓣沉积沉积梗阻分析FSI,具有合理的流动溶液。随着阀门传单和动脉表面运动来,我们通过时空拓扑改变方法和异常离散化进行新的,更高的保险费流体力学计算。沉默啮齿机和时空方法都是变形式多尺度方法。呈现的用于生物假体心脏瓣膜的计算表明了介绍的方法的功率。

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