旋转气体流场中液滴碰撞与破袋实验研究

Shuo Ouyang, Z. Xiong, Wei Zhao, Ruiqi Kang, Zhen Li
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引用次数: 0

摘要

在旋叶分离器中,液相在离心力的作用下从旋转的气流中分离出来。液滴被旋转气流带到分离器壁上。本文利用高速摄像机记录了旋转流场中单个液滴撞击壁上静止液滴的现象。随着入口气流速度从4 m/s增加到4.8 m/s,出现了不同类型的液滴碰撞。结果表明:随着韦伯数的增加,双液滴在旋转流场中的碰撞以聚并、指展、指断和飞溅等不对称结果发生;旋转流场的螺旋特性导致了液滴碰撞的不对称性。破袋发生在旋转流场中。随着韦伯数的增加,破袋液滴数和破袋时间增加。本研究为二元液滴在旋转流场中的影响和破袋提供了基本特征,提高了对气液分离器分离效率机理的认识。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental Study of Droplets Collision and Bag Breaking in Rotating Gas Flow Field
In swirl-vane separators, the liquid phase is separated from the rotating gas flow under the action of centrifugal force. The droplets are carried by the rotating gas flow to the wall of the separator. In this paper, the phenomenon of a single droplet hitting on a stationary droplet on the wall in the rotating flow field is recorded by using a high-speed camera. Different types of droplet collisions appear as the inlet airflow velocity increases from 4 m/s to 4.8 m/s. Results show that the binary droplet impacts in the rotating flow field occur in asymmetric outcomes such as coalescence, finger spreading, finger breaking and splashing with the increase of the Weber number. The spiral characteristic of the rotating flow field leads to the asymmetry of the droplet collision. The bag breaking occurs in the rotating flow field. The number of droplets of bag breaking and breaking time are increased with Weber number increasing. This study provides basic characteristics for the impact of binary droplets in the rotating flow field and bag breaking, as well as improves the understanding of the separation efficiency mechanism of the gas-liquid separator.
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