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首页> 外文期刊>Communications in numerical methods in engineering >Fast numerical solutions of patient-specific blood flows in 3D arterial systems
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Fast numerical solutions of patient-specific blood flows in 3D arterial systems

机译:3D动脉系统中患者特定血流的快速数值解

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摘要

The study of hemodynamics in arterial models constructed from patient-specific medical images requires the solution of the incompressible flow equations in geometries characterized by complex branching tubular structures. The main challenge with this kind of geometries is that the convergence rate of the pressure Poisson solver is dominated by the graph depth of the computational grid. This paper presents a deflated preconditioned conjugate gradients (DPCG) algorithm for accelerating the pressure Poisson solver. A subspace deflation technique is used to approximate the lowest eigenvalues along the tubular domains. This methodology was tested with an idealized cylindrical model and three patient-specific models of cerebral arteries and aneurysms constructed from medical images. For these cases, the number of iterations decreased by up to a factor of 16, while the total CPU time was reduced by up to 4 times when compared with the standard PCG solver.
机译:在根据患者特定医学图像构建的动脉模型中进行血流动力学研究需要解决以复杂分支管状结构为特征的几何形状中不可压缩的流动方程。这种几何形状的主要挑战在于,压力泊松求解器的收敛速度由计算网格的图形深度决定。本文提出了一种用于加速压力泊松求解器的放气预处理共轭梯度(DPCG)算法。子空间放气技术用于近似沿管状域的最低特征值。使用理想化的圆柱模型和根据医学图像构建的三个特定于患者的脑动脉和动脉瘤模型,对该方法进行了测试。对于这些情况,与标准PCG求解器相比,迭代次数最多减少了16倍,而总CPU时间最多减少了4倍。

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