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Predicting Droplet Size Distribution by Image Processing Technique for an Air Blast Atomizer

机译:通过图像处理技术预测鼓风雾化器的液滴尺寸分布

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摘要

An image processing technique was used to predict the size distribution of the high speed, fine droplets at downstream of an air blast atomizer. The spray visualization setup consisted of UV lamps as light source, a stroboscope for slowing down the droplet motion, and a digital camera to capture the droplet images. The experiments were carried out at different liquid flow rates with various nozzle diameters. Two key unknown parameters (spray half angle and dispersion angle) of the air blast atomizer model in Fluent were obtained from these experiments. Using the obtained parameters and other structural parameters, the spray modeling was performed, and the Rosin-Rammler distribution was obtained and compared with those obtained from image processing technique through a diagnostic matrix. Regarding the kappa value, the agreement between predictions of the Fluent model and the image processing technique was moderate.
机译:图像处理技术被用来预测鼓风雾化器下游的高速细小液滴的尺寸分布。喷雾可视化设置由紫外线灯作为光源,用于减慢液滴运动的频闪仪和捕获液滴图像的数码相机组成。在具有不同喷嘴直径的不同液体流速下进行了实验。从这些实验中获得了Fluent中鼓风雾化器模型的两个关键未知参数(喷雾半角和分散角)。使用获得的参数和其他结构参数进行喷涂建模,获得Rosin-Rammler分布并将其与通过诊断矩阵从图像处理技术获得的分布进行比较。关于kappa值,Fluent模型的预测与图像处理技术之间的一致性适中。

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