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Automatic Generation of Individual Finite-Element Models for Computational Fluid Dynamics and Computational Structure Mechanics Simulations in the Arteries

机译:自动生成用于动脉的计算流体动力学和计算结构力学仿真的单个有限元模型

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Abnormal hemodynamics and biomechanics of blood flow and vessel wall conditions in the arteries may result in severe cardiovascular diseases. Cardiovascular diseases result from complex flow pattern and fatigue of the vessel wall and are prevalent causes leading to high mortality each year. Computational Fluid Dynamics (CFD), Computational Structure Mechanics (CSM) and Fluid Structure Interaction (FSI) have become efficient tools in modeling the individual hemodynamics and biomechanics as well as their interaction in the human arteries. The computations allow non-invasively simulating patient-specific physical parameters of the blood flow and the vessel wall needed for an efficient minimally invasive treatment. The numerical simulations are based on the Finite Element Method (FEM) and require exact and individual mesh models to be provided. In the present study, we developed a numerical tool to automatically generate complex patient-specific Finite Element (FE) mesh models from image-based geometries of healthy and diseased vessels. The mesh generation is optimized based on the integration of mesh control functions for curvature, boundary layers and mesh distribution inside the computational domain. The needed mesh parameters are acquired from a computational grid analysis which ensures mesh-independent and stable simulations. Further, the generated models include appropriate FE sets necessary for the definition of individual boundary conditions, required to solve the system of nonlinear partial differential equations governed by the fluid and solid domains. Based on the results, we have performed computational blood flow and vessel wall simulations in patient-specific aortic models providing a physical insight into the pathological vessel parameters. Automatic mesh generation with individual awareness in terms of geometry and conditions is a prerequisite for performing fast, accurate and realistic FEM-based computations of hemodynamics and biomechanics in the arteries and is therefore included in this work. The tool is integrated into our simulation system for CFD, CSM and FSI applications and represents an essential aspect for efficient and fast evaluation of surgical procedures based on predictive simulations of disease growth, state of fatigue and assessment of risk individually for each patient.
机译:动脉的血流动力学和血流动力学异常以及血管壁状况可能导致严重的心血管疾病。心血管疾病是由复杂的流型和血管壁疲劳引起的,并且是每年导致高死亡率的普遍原因。计算流体力学(CFD),计算结构力学(CSM)和流体结构相互作用(FSI)已成为对单个血液动力学和生物力学及其在人体动脉中相互作用的建模的有效工具。该计算允许无创地模拟有效微创治疗所需的患者特定的血流和血管壁物理参数。数值模拟基于有限元方法(FEM),并且需要提供精确的单个网格模型。在本研究中,我们开发了一种数值工具,可以从基于图像的健康和患病血管的几何形状自动生成复杂的患者特定的有限元(FE)网格模型。网格生成是基于网格控制功能的集成而优化的,这些功能包括计算域内的曲率,边界层和网格分布。所需的网格参数是从计算网格分析中获取的,从而确保网格独立且稳定的仿真。此外,生成的模型包括定义单个边界条件所必需的适当有限元集,这是求解由流体域和固体域控制的非线性偏微分方程组所必需的。基于结果,我们在特定于患者的主动脉模型中进行了计算血流和血管壁模拟,从而提供了对病理性血管参数的物理了解。在几何和条件方面具有个人意识的自动网格生成是执行基于FEM的快速,准确和现实的动脉血流动力学和生物力学计算的先决条件,因此包含在这项工作中。该工具已集成到我们用于CFD,CSM和FSI应用的仿真系统中,并且代表了基于疾病生长,疲劳状态的预测性仿真以及每位患者的风险评估而快速有效地评估手术程序的重要方面。

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