Air-blast atomization of a liquid film

Ippei Oshima, Akira Sou
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Abstract

Air-blast atomizers are extensively used for a variety of purposes. Due to its complexity, the atomization mechanism has not been elucidated. In this study, a mechanistic model is proposed to predict the droplet diameter distribution based on the atomization process of a planar liquid film with co-current gas flows, and its validity is examined by comparing the estimated and measured droplet diameters using high-speed image analysis and laser measurement. As a result, using high-speed imaging, we clarified that the bag film rupture is caused not by the turbulence of the gas flow but by the impact of floating droplets on the liquid film of the expanding bag when the film is thin enough. The average thickness of the liquid film at the bag breakup is of the order of micrometres and varies greatly, resulting in a dispersed distribution of droplet diameters. After the film ruptures, the bag film shrinks towards its transversal and vertical rims due to surface tension, forming large-diameter ligaments. During the contraction process of the bag film, tiny droplets of the order of micrometers are formed at the edge of the perforation. Finally, the remaining ligaments with large diameters fragment into large droplets with submillimetre diameters. The good agreement between the measured and predicted droplet diameter distributions validated the mechanistic model.
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液体薄膜的气喷雾化
气爆雾化器被广泛用于各种用途。由于其复杂性,雾化机理尚未阐明。在本研究中,我们提出了一个机理模型来预测基于同流气体的平面液膜雾化过程的液滴直径分布,并通过高速图像分析和激光测量来比较估计和测量的液滴直径,从而检验其有效性。结果,通过高速成像,我们明确了袋膜破裂不是由气流的湍流造成的,而是在袋膜足够薄时,漂浮液滴对膨胀袋液膜的冲击造成的。袋子破裂时液膜的平均厚度为微米数量级,而且变化很大,导致液滴直径分布分散。薄膜破裂后,由于表面张力的作用,袋膜向其横向和纵向边缘收缩,形成大直径的韧带。在袋膜收缩过程中,穿孔边缘会形成微米级的小液滴。最后,剩余的大直径韧带碎裂成直径亚毫米的大液滴。测量和预测的液滴直径分布之间的良好一致性验证了该力学模型。
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