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首页> 外文期刊>Computer Methods in Applied Mechanics and Engineering >Augmented Lagrangian method for constraining the shape of velocity profiles at outlet boundaries for three-dimensional finite element simulations of blood flow
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Augmented Lagrangian method for constraining the shape of velocity profiles at outlet boundaries for three-dimensional finite element simulations of blood flow

机译:用于限制血流三维有限元模拟的增强拉格朗日方法来限制出口边界处的速度分布图的形状

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摘要

In three-dimensional blood flow simulations of the cardiovascular system, velocity and pressure fields in the computational domain are highly affected by outlet boundary conditions. This fact has motivated the development of novel methods to couple three-dimensional computational domains with one-dimensional numerical models or, alternatively, with zero-dimensional or one-dimensional analytic models. In all such methods described to date, whether they are explicit or implicit, the relationship between flow and pressure at the outlet boundary is enforced weakly. This coupling does not include any constraints on the shape of the velocity profiles nor on the distribution of pressure at the interface. As a result, there remain some classes of problems that are, at best, difficult to solve, and at worst, intractable, with current numerical methods for simulating blood flow. These include problems with significant flow reversal during part of the cardiac cycle or geometric complexity in the proximity of the outlet of the computational domain. We have implemented a novel method to resolve these challenging problems whereby an augmented Lagrangian method is used to enforce constraints on the shape of the velocity profile at the interface between the upstream computational domain and the downstream analytic domain. These constraints on the shape of the velocity profile are added to the Coupled Multidomain Method in order to implicitly couple the computational domain with downstream analytic models. In this study, an axi-symmetric profile is imposed after ensuring that each constrained outlet boundary is circular. We demonstrate herein that including constraints on the shape of the velocity profile does not affect velocity and pressure fields except in the immediate vicinity of the constrained outlet boundaries. Furthermore, this new method enables the solution of problems which diverged with an unconstrained method.
机译:在心血管系统的三维血流模拟中,计算域中的速度和压力场受出口边界条件的影响很大。这一事实激励了新颖方法的发展,以将三维计算域与一维数值模型或零维或一维解析模型耦合。迄今为止,在所有这些方法中,无论是显式的还是隐式的,出口边界处的流量和压力之间的关系都难以实现。该耦合不包括对速度分布图的形状的任何约束,也不包括对界面处的压力分布的任何约束。结果,仍然存在一些类型的问题,这些问题在当前用于模拟血流的数值方法中,最好是难以解决,而最坏情况是难以解决的。这些问题包括在心动周期的一部分期间流量明显逆转或计算域出口附近的几何复杂性的问题。我们已经实现了一种新颖的方法来解决这些具有挑战性的问题,其中使用增强的拉格朗日方法来对上游计算域和下游分析域之间的界面处的速度分布图形状施加约束。这些对速度分布图形状的约束被添加到耦合多域方法中,以便将计算域与下游分析模型隐式耦合。在本研究中,在确保每个受约束的出口边界为圆形之后,施加轴对称轮廓。我们在此证明,在速度分布图的形状上包括约束不会影响速度场和压力场,除非在受约束的出口边界附近。此外,这种新方法可以解决不受约束的方法所产生的问题。

著录项

  • 来源
  • 作者单位

    Department of Mechanical Engineering, Stanford University, E350 Clark Center, 318 Campus Drive, Stanford, CA 94305, USA;

    Department of Bioengineering, Stanford University, E350 Clark Center, 318 Campus Drive, Stanford, CA 94305, USA;

    Institute for Computational Engineering and Sciences, The University of Texas at Austin, 201 East 24th Street, ACES 5.430A 1 University Station, C0200, Austin, TX 78712, USA;

    Scientific Computation Research Center and the Department of Mechanical, Aeronautical and Nuclear Engineering, Rensselaer Polytechnic Institute, Troy, NY 12180, USA;

    Department of Bioengineering, Stanford University, E350 Clark Center, 318 Campus Drive, Stanford, CA 94305, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    blood flow; boundary conditions; augmented lagrangian method; coupled multidomain method;

    机译:血流(量;边界条件;增强拉格朗日法耦合多域方法;

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