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Analysis of multiphase fluid flows via high speed and synthetic aperture three dimensional imaging

机译:高速合成孔径三维成像分析多相流体流动

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摘要

Spray flows are a difficult problem within the realm of fluid mechanics because of the complicated interfacial physics involved. Complete models of sprays having even the simplest geometries continue to elude researchers and practitioners. From an experimental viewpoint, measurement of dynamic spray characteristics is made difficult by the optically dense nature of many sprays. Flow features like ligaments and droplets break off the bulk liquid volume during the atomization process and often occlude each other in images of sprays. In this thesis, two important types of sprays are analyzed. The first is a round liquid jet in a cross flow of air, which applies, for instance, to fuel injection in jet engines and the aerial spraying of crops. This flow is studied using traditional high-speed imaging in what is known as the bag breakup regime, in which partial bubbles that look like bags are formed along the downstream side of the liquid jet due to the aerodynamic drag exerted on it by the cross flow. Here, a new instability is discovered experimentally involving the presence of multiple bags at the same streamwise position along the jet. The dynamics of bag expansion and upstream column wavelengths are also investigated experimentally and theoretically, with experimental data having found to generally follow the scaling arguments predicted by the theory. The second flow that is studied is the atomization of an unsteady turbulent sheet of water in air, a situation encountered in the formation and breakup of ship bow waves. To better understand these complicated flows, the emerging light field imaging (LFI) and synthetic aperture (SA) refocusing techniques are combined to achieve three-dimensional (3D) reconstruction of the unsteady spray flow fields. A multi-camera array is used to capture the light field and raw images are reparameterized to digitally refocus the flow field post-capture into a volumetric image. These methods allow the camera array to effectively "see through" partial occlusions in the scene. It is demonstrated here that flow features, such as individual droplets and ligaments, can be located in 3D by refocusing throughout the volume and extracting features on each plane.
机译:由于涉及复杂的界面物理,喷雾流是流体力学领域中的一个难题。甚至具有最简单几何形状的喷雾的完整模型仍在躲避研究人员和从业人员。从实验的角度来看,由于许多喷雾的光学致密性质,使得动态喷雾特性的测量变得困难。诸如韧带和液滴的流动特征会在雾化过程中分解大量液体,并经常在喷雾图像中相互阻塞。本文分析了两种重要的喷雾剂。第一种是在空气横流中产生的圆形液体射流,例如适用于喷气发动机的燃料喷射和农作物的空中喷雾。使用传统的高速成像技术在所谓的袋破裂方案中研究了这种流动,其中由于横流施加在其上的空气动力学阻力,沿液体射流的下游侧形成了类似于袋的部分气泡。在这里,通过实验发现了新的不稳定性,其中涉及沿射流在同一流向位置存在多个袋子。还通过实验和理论研究了袋膨胀和上游色谱柱波长的动力学,发现实验数据通常遵循该理论预测的定标参数。研究的第二种流动是空气中不稳定水流的雾化,这是船首波形成和破裂时遇到的情况。为了更好地理解这些复杂的流,新兴的光场成像(LFI)和合成孔径(SA)重新聚焦技术相结合,以实现非稳定喷雾流场的三维(3D)重建。使用多摄像机阵列捕获光场,并对原始图像进行重新参数化,以将捕获后的流场数字化重新聚焦为体积图像。这些方法使摄像机阵列可以有效地“透视”场景中的部分遮挡。在此证明,通过重新聚焦整个体积并在每个平面上提取特征,可以在3D中定位诸如单个液滴和韧带之类的流动特征。

著录项

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    Scharfman Barry Ethan;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 eng
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