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A massively parallel adaptive sharp interface solver with application to mechanical heart valve simulations.

机译:大规模并行自适应尖锐接口求解器,应用于机械心脏瓣膜仿真。

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摘要

This thesis presents a framework for simulating the fluid dynamical behavior of complex moving boundary problems in a high-performance computing environment. The framework is implemented in the pELAFINT3D software package. Moving boundaries are evolved in a seamless fashion through the use of distributed narrow band level set methods and the effect of moving boundaries is incorporated into the flow solution by a novel Cartesian grid method. The proposed Cartesian grid approach builds on the concept of a ghost fluid method where boundary conditions are applied through least-squares polynomial extrapolations. The method is hybridized such that computational cells adjacent to moving boundaries change discretization schemes smoothly in time to avoid the introduction of strong oscillations in the pressure field. The hybridization is shown to have minimal effect on accuracy while significantly suppressing pressure oscillations.;The computational capability of the Cartesian grid approach is enhanced with a massively parallel adaptive meshing algorithm. Local mesh enrichment is effected through the use of octree refinement, and a scalable mesh pruning algorithm is used to reduce the memory footprint of the Cartesian grid for geometries which are not well bounded by a rectangular cuboid. The computational work is kept in a well-balanced state through the use of an adaptive repartitioning strategy. The numerical scheme is validated against many benchmark problems and the composite approach is demonstrated to work well on tens of thousands of computational cores. A simulation of the closure phase of a mechanical heart valve was carried out to demonstrate the ability of the pELAFINT3D package to compute high Reynolds number flows with complex moving boundaries and a wide disparity in length scales. Finally, a novel image-to-computation algorithm was implemented to demonstrate the flexibility the current method allows in designing new applications.
机译:本文提出了一个在高性能计算环境中模拟复杂运动边界问题的流体动力学行为的框架。该框架在pELAFINT3D软件包中实现。通过使用分布的窄带水平集方法,移动边界以无缝的方式演变,并且通过新颖的笛卡尔网格方法将移动边界的影响合并到流解中。所提出的笛卡尔网格方法建立在幻影流体方法的概念上,其中通过最小二乘多项式外推法应用了边界条件。将该方法进行混合,以使与移动边界相邻的计算单元及时平滑地更改离散方案,以避免在压力场中引入强烈的振荡。结果表明,杂交对精度的影响最小,同时显着抑制了压力波动。;通过大规模并行自适应网格划分算法,增强了笛卡尔网格方法的计算能力。局部网格的富集是通过使用八叉树细化来实现的,并且可伸缩的网格修剪算法用于减少笛卡尔网格的内存占用量,以解决矩形矩形没有很好界定的几何问题。通过使用自适应重新分配策略,可将计算工作保持在均衡状态。数值方案针对许多基准问题进行了验证,并且证明了该综合方法在数以万计的计算核心上都能很好地工作。对机械心脏瓣膜的关闭阶段进行了仿真,以证明pELAFINT3D封装具有计算高雷诺数流,复杂的移动边界和较大的长度差异的能力。最后,实现了一种新颖的图像到计算算法,以展示当前方法在设计新应用程序中所具有的灵活性。

著录项

  • 作者

    Mousel, John Arnold.;

  • 作者单位

    The University of Iowa.;

  • 授予单位 The University of Iowa.;
  • 学科 Engineering Mechanical.;Computer Science.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 207 p.
  • 总页数 207
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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