首页> 外文会议>ASME heat transfer conference >SCHLIEREN 3D-CT RECONSTRUCTION OF INSTANTANEOUS DENSITY DISTRIBUTIONS OF SPARK-IGNITED FLAME KERNELS OF FUEL-RICH PROPANE-AIR PREMIXTURE
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SCHLIEREN 3D-CT RECONSTRUCTION OF INSTANTANEOUS DENSITY DISTRIBUTIONS OF SPARK-IGNITED FLAME KERNELS OF FUEL-RICH PROPANE-AIR PREMIXTURE

机译:富含汽油的丙烷-空气过早燃烧的火焰核的瞬时密度分布的SCHLIEREN 3D-CT重建

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For 3D observation of high speed flames, non-scanning 3D-CT technique using a multi-directional quantitative schlieren system with flash light source, is proposed for instantaneous density distribution of unsteady premixed flames. This "Schlieren 3D-CT" is based on (ⅰ)simultaneous acquisition of flash-light schlieren images taken from numerous directions, and (ⅱ) 3D-CT reconstruction of the images by an appropriate CT algorithm. In this technique, for simultaneous schlieren photography, the custom-made 20-directional schlieren camera has been constructed and used. This camera consists of 20 optical systems of single-directional quantitative schlieren system. Each system is composed of two convex achromatic lenses of 50 mm in diameter and 300 mm in focal length, a light source unit, a schlieren stop of a vertical knife edge and a digital camera. The light unit has a flash (9 micro-sec duration) light source of a uniform luminance rectangular area of 1 mm × 1 mm. Both of the uniformity of the luminosity and the definite shape are essential for a quantitative schlieren observation. Sensitivity of the digital cameras are calibrated with a stepped neutral density filter. Target flames are located at the center of the camera. The image set of 20 directional schlieren images are processed as follows. First the schlieren picture brightness is shifted by no-flame-schlieren picture brightness in order to obtain the real schlieren brightness images. Second, brightness of these images is scaled by Gladstone-Dale constant of air. Finally, the scaled brightness is horizontally integrated to form "density thickness images", which can be used for CT reconstruction of density distribution. The density thickness images are used for CT reconstruction by MLEM (maximum likelihood-expectation maximization) CT-algorithm to obtain the 3D reconstruction of instantaneous density distribution. In this investigation, the "density thickness" projection images of 400(H) × 500(V) pixel (32.0 mm × 40.0 mm) are used for 3D-CT reconstruction to produce 3D data of 400(x) × 400(y) × 500(z) pixel (32.0 mm × 32.0 mm × 40.0 mm). The voxel size is 0.08 mm each direction. In this investigation, the target flame is spark-ignited flame kernels. The flame kernels are made by spark ignition for a fuel-rich propane-air premixed gas. First, laminar flow is selected as the premixed gas flow to establish the spherically expanding laminar flame. The CT reconstruction result show the spherical shape of flame kernel with a pair of deep wrinkles. The wrinkle is considered to be caused by spark electrodes. Next turbulent flows behind turbulence promoting grid is selected. The corrugated shape flame kernel is obtained. The schlieren 3D-CT measurements are made for the complicated kernels. CT results expresses the instantaneous 3D turbulent flame kernel shapes.
机译:为了对高速火焰进行3D观测,提出了使用带有闪光灯光源的多方向定量schlieren系统的非扫描3D-CT技术,用于非稳定预混火焰的瞬时密度分布。该“ Schlieren 3D-CT”是基于(ⅰ)同时获取从多个方向拍摄的闪光schlieren图像,以及(ⅱ)通过适当的CT算法对图像进行3D-CT重建。在此技术中,对于同时进行纹影摄影,已构建并使用了定制的20向纹影照相机。该摄像机由20个光学系统的单向定量schlieren系统组成。每个系统由两个直径为50毫米,焦距为300毫米的凸消色差透镜,一个光源单元,一个垂直刀刃的刻纹光阑和一个数码相机组成。照明单元具有1毫米×1毫米的均匀亮度矩形区域的闪光灯(持续时间为9微秒)。光度的均匀性和确定的形状对于定量schlieren观测都是必不可少的。数码相机的灵敏度通过步进式中性密度滤镜进行校准。目标火焰位于相机的中央。如下处理20张定向schlieren图像的图像集。首先,将无影无影纹影图像的亮度偏移为无影无影纹影的图像亮度,以获得真实的无影无影纹影亮度图像。其次,这些图像的亮度由空气的Gladstone-Dale常数定标。最后,将按比例缩放的亮度水平积分,以形成“密度厚度图像”,可用于密度分布的CT重建。密度厚度图像用于通过MLEM(最大似然期望最大化)CT算法进行CT重建,以获得瞬时密度分布的3D重建。在这项研究中,将400(H)×500(V)像素(32.0 mm×40.0 mm)的“密度厚度”投影图像用于3D-CT重建,以生成400(x)×400(y)的3D数据。 ×500(z)像素(32.0毫米×32.0毫米×40.0毫米)。每个方向的体素大小为0.08毫米。在本研究中,目标火焰是火花点火的火焰核。火焰核是通过火花点火产生的,用于富含燃料的丙烷-空气预混合气体。首先,选择层流作为预混合气流,以建立球形膨胀的层流火焰。 CT重建结果显示火焰核呈球形,并带有一对深皱纹。皱纹被认为是由火花电极引起的。选择湍流促进网格后面的下一个湍流。获得波纹状火焰核。 schlieren 3D-CT测量适用于复杂的内核。 CT结果表示瞬时3D湍流火焰核形状。

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