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声场中气泡运动的实验与理论联合研究

Combined experimental and theoretical investigation of the gas bubble motion in an acoustic field.

作者信息

Ma Xiaojian, Xing Tianyu, Huang Biao, Li Qiuhe, Yang Yifei

机构信息

School of Mechanical and Vehicular Engineering, Beijing Institute of Technology, Beijing 100081, China; Department of Techniques Research and Development, Ferly Environmental Protection Equipment (Hebei) Co., Ltd., Hebei 065399, China.

School of Information Science & Technology, Beijing Forestry University, Beijing 100083, China.

出版信息

Ultrason Sonochem. 2018 Jan;40(Pt A):480-487. doi: 10.1016/j.ultsonch.2017.07.035. Epub 2017 Jul 24.

Abstract

The objective of this paper is to apply the combined experimental and theoretical method to investigate the various behaviors of gas bubbles in an acoustic field. In the experiments, high-speed video and ultrasonic processor are used to capture the transient evolution of gas bubble patterns, as well as velocity profiles. In the theoretical analysis, the theories of primary and secondary Bjerknes forces and buoyancy force are introduced to accurately demonstrate the variations of bubble volume and motion. Results are presented for gas bubbles with the radius of 1.4mm under an acoustic field with a frequency of 18kHz, for three cases, namely single bubble rising in a quiescent liquid, acoustic single bubble oscillation and two bubbles coalescence conditions. The results show that the fragments around the single gas bubble presents the periodical behaviors, namely, splitting, attraction, and secondary splitting motion. The centroid of the single gas bubble almost oscillates without motion upwards or downwards, because of the equilibrium of the primary Bjerknes force caused by acoustic waves and the effect of the buoyancy force. For the two coalescing bubbles, the resultant of buoyancy, primary and secondary Bjerknes forces acting on two bubbles are same in magnitude, but in opposite direction, which indicates that two gas bubbles attract each other and and coalesce into one.

摘要

本文的目的是应用实验与理论相结合的方法来研究声场中气泡的各种行为。在实验中,使用高速摄像机和超声处理器来捕捉气泡形态的瞬态演变以及速度剖面。在理论分析中,引入一级和二级 Bjerknes 力以及浮力理论,以准确地说明气泡体积和运动的变化。给出了半径为 1.4mm 的气泡在频率为 18kHz 的声场中的三种情况的结果,即单个气泡在静止液体中上升、声单气泡振荡以及两个气泡合并的情况。结果表明,单个气泡周围的碎片呈现出周期性行为,即分裂、吸引和二次分裂运动。由于声波引起的一级 Bjerknes 力与浮力作用的平衡,单个气泡的质心几乎只振荡而不向上或向下移动。对于两个合并的气泡,作用在两个气泡上的浮力、一级和二级 Bjerknes 力的合力大小相同,但方向相反,这表明两个气泡相互吸引并合并成一个。

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