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A Tool for Visualizing Large-Scale Interactions between Turbulence and Particles in 3D Space through 2D Trajectory Visualization

机译:通过2D轨迹可视化可视化3D空间中湍流和粒子之间的大规模相互作用的工具

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Particle-laden turbulent flows are relevant to many industrial, biological, and environmental applications. In these flows, there are many interactions that occur between the carrier-fluid turbulence and the dispersed particles inside; visualization tools aid in understanding the complex physical phenomena at various spatial and time scales in such flows. For a large scale 3D particle-laden turbulence, visualizing the vector data in a dynamic environment makes the computation expensive. Furthermore, the interaction between the turbulence and particles is difficult to observe in 3D. The particle-turbulence interaction is easy to observe using 2D visualization, yet 2D visualization cannot properly capture the dynamics of the interactions. In this paper, we explore a method which can visualize the 3D effect of particle-turbulence interaction as a 2D trajectory visualization. We divide the 3D particle trajectory into several segments and, for each, we compute the plane crossing the line segment. As the turbulence vectors across the plane have a significant impact on the particle motion, we only visualize the planes where the particles are localized. Since we select the salient planes to visualize instead of the whole 3D vector cube, considerable improvements can be achieved with regards to the memory and time performance. For each plane, we use Line Integral Convolution to visualize the turbulence. Originally, Line Integral Convolution only visualizes the vectors' direction. Instead, we not only visualize the vector directions but also the magnitude of the flow by utilizing a more meaningful texture, which generates a more compelling visualization.
机译:充满颗粒的湍流与许多工业,生物和环境应用有关。在这些流动中,载流湍流与内部的分散颗粒之间发生了许多相互作用。可视化工具有助于理解此类流中各种空间和时间尺度上的复杂物理现象。对于大规模的3D粒子湍流,在动态环境中可视化矢量数据会使计算变得昂贵。此外,湍流和粒子之间的相互作用很难在3D模式下观察到。使用2D可视化很容易观察到粒子-湍流相互作用,但是2D可视化无法正确捕获相互作用的动力学。在本文中,我们探索了一种可以将粒子-湍流相互作用的3D效果可视化为2D轨迹可视化的方法。我们将3D粒子轨迹划分为多个段,并针对每个段计算与线段相交的平面。由于整个平面上的湍流矢量对粒子运动有重大影响,因此我们仅可视化粒子所在的平面。由于我们选择显眼平面而不是整个3D矢量立方体进行可视化,因此可以在内存和时间性能方面实现相当大的改进。对于每个平面,我们使用线积分卷积可视化湍流。最初,线积分卷积仅可视化矢量的方向。取而代之的是,我们不仅通过利用更有意义的纹理来可视化矢量方向,而且还可以可视化流动的大小,从而产生更引人注目的可视化效果。

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