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超声与静电场耦合作用下可压缩液体中非球形气泡的动力学特性

Dynamics of nonspherical bubble in compressible liquid under the coupling effect of ultrasound and electrostatic field.

作者信息

Deng Jin-Jie, Yang Ri-Fu, Lu Hai-Qin

机构信息

Department of Mechanical and Electrical Engineering, Yangjiang Polytechnic, Yangjiang 529500, China; School of Physics, South China University of Technology, Guangzhou 510640, China.

School of Physics, South China University of Technology, Guangzhou 510640, China.

出版信息

Ultrason Sonochem. 2021 Mar;71:105371. doi: 10.1016/j.ultsonch.2020.105371. Epub 2020 Oct 30.

Abstract

A model for a nonspherical bubble in a compressible liquid under the coupling effect of ultrasound and electrostatic field was developed in this study. The following assumptions are made: (1) the bubble undergoes adiabatic oscillation; (2) the gravity of the liquid is negligible; (3) the bubble is insulating. If the speed of sound approaches infinity (c→∞), the equation set is reduced to the equation set for an incompressible liquid. We found that, under ultrasonic irradiation coupled with electric stress, a nonspherical bubble cannot oscillate steadily in the liquid. The bubble is bound to collapse during several cycles. The presence of electric stress reduces the surface tension at the bubble wall, which produces a larger maximum bubble-radius during the rarefaction cycle and a smaller minimum bubble-radius during the compression cycle. Consequently, during the collapse, both the gas pressure and the temperature in the bubble center increase substantially, if the bubble is exposed to both ultrasound and electrostatic field instead of ultrasound alone. In addition, the cavitation threshold of the bubble within an electrostatic field decreases significantly, compared to the bubble without an electrostatic field. In general, bubble cavitation occurs more easily and violently in the liquid after the introduction of an electrostatic field.

摘要

本研究建立了一个可压缩液体中在超声和静电场耦合作用下的非球形气泡模型。做出以下假设:(1)气泡进行绝热振荡;(2)液体的重力可忽略不计;(3)气泡是绝缘的。如果声速趋近于无穷大(c→∞),方程组就简化为不可压缩液体的方程组。我们发现,在超声辐照与电应力耦合作用下,非球形气泡在液体中不能稳定振荡。气泡必然会在几个周期内崩溃。电应力的存在降低了气泡壁处的表面张力,这在稀疏周期产生更大的最大气泡半径,在压缩周期产生更小的最小气泡半径。因此,在崩溃过程中,如果气泡同时受到超声和静电场作用而非仅受超声作用,气泡中心的气体压力和温度都会大幅增加。此外,与无静电场的气泡相比,静电场中气泡的空化阈值显著降低。一般来说,引入静电场后,液体中气泡的空化更容易且更剧烈地发生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/90ea/8187881/6bbf46e26a3a/gr1.jpg

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