首页> 外文会议>Proceedings of the conference on Visualization '04 >Tracking of Vector Field Singularities in Unstructured 3D Time-Dependent Datasets
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Tracking of Vector Field Singularities in Unstructured 3D Time-Dependent Datasets

机译:非结构化3D时间相关数据集中的矢量场奇异性跟踪

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摘要

In this paper, we present an approach for monitoring the positions of vector field singularities and related structural changes in time-dependent datasets. The concept of singularity index is discussed and extended from the well-understood planar case to the more intricate three-dimensional setting. Assuming a tetrahedral grid with linear interpolation in space and time, vector field singularities obey rules imposed by fundamental invariants (Poincar�e index), which we use as a basis for an efficient tracking algorithm. We apply the presented algorithm to CFD datasets to illustrate its purpose. We examine structures that exhibit topological variations with time and describe some of the insight gained with our method. Examples are given that show a correlation in the evolution of physical quantities that play a role in vortex breakdown.
机译:在本文中,我们提出了一种方法来监视时间依赖数据集中矢量场奇点的位置以及相关结构的变化。讨论了奇异指数的概念,并将其从易于理解的平面情况扩展到更复杂的三维设置。假设在空间和时间上具有线性插值的四面体网格,矢量场奇异性服从基本不变性(庞加莱指数)强加的规则,我们将其用作有效跟踪算法的基础。我们将提出的算法应用于CFD数据集以说明其目的。我们研究随时间呈现拓扑变化的结构,并描述通过我们的方法获得的一些见识。给出的例子表明,在涡旋分解中起作用的物理量的演变具有相关性。

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