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Physically-Based Interactive Schlieren Flow Visualization

机译:基于物理的交互式Schlieren流量可视化

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Understanding fluid flow is a difficult problem and of increasing importance as computational fluid dynamics produces an abundance of simulation data. Experimental flow analysis has employed techniques such as shadowgraph and schlieren imaging for centuries which allow empirical observation of inhomogeneous flows. Shadowgraphs provide an intuitive way of looking at small changes in flow dynamics through caustic effects while schlieren cutoffs introduce an intensity gradation for observing large scale directional changes in the flow. The combination of these shading effects provides an informative global analysis of overall fluid flow. Computational solutions for these methods have proven too complex until recently due to the fundamental physical interaction of light refracting through the flow field. In this paper, we introduce a novel method to simulate the refraction of light to generate synthetic shadowgraphs and schlieren images of time-varying scalar fields derived from computational fluid dynamics (CFD) data. Our method computes physically accurate schlieren and shadowgraph images at interactive rates by utilizing a combination of GPGPU programming, acceleration methods, and data-dependent probabilistic schlieren cutoffs. Results comparing this method to previous schlieren approximations are presented.
机译:理解流体流是难题,随着计算流体动力学产生丰富的模拟数据,越来越重要。实验流程分析采用了几个世纪以来的影子图和Schlieren成像的技术,其允许非均匀流动的经验观察。影子图提供了一种直观的方式来通过腐蚀性效应来看着流动动力学的小变化,而Schlieren截止值引入强度灰度以观察到流动的大规模定向变化。这些着色效果的组合提供了对整个流体流动的信息性全局分析。这些方法的计算解决方案直到最近被证明过于复杂,因为光折射通过流场的光学物理相互作用。在本文中,我们介绍了一种新的方法来模拟光的折射,以产生从计算流体动力学(CFD)数据的时变标标量场的综合影像图和Schlieren图像。我们的方法通过利用GPGPU编程,加速方法和数据依赖性概率型Schlieren截止值来计算物理上精确的Schlieren和ShadowPraph图像以交互式速率。结果将此方法与先前的Schlieren近似进行比较。

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