Study on the Dynamic Characteristics of Single Cavitation Bubble Motion near the Wall Based on the Keller–Miksis Model

Author:

Han Wei12,Gu Zhenye1,Li Rennian12,Mi Jiandong13,Bai Lu1,Deng Wanquan4

Affiliation:

1. School of Energy and Power Engineering, Lanzhou University of Technology, Lanzhou 730050, China

2. Key Laboratory of Advanced Pumps, Valves and Fluid Control System of the Ministry of Education, Lanzhou University of Technology, Lanzhou 730050, China

3. Shaanxi Aerospace Power Hi-Tech Co., Ltd., Xi’an 710077, China

4. Key Laboratory of Fluid Machinery and Engineering, Xihua University, Chengdu 610039, China

Abstract

The dynamic model of cavitation bubbles serves as the foundation for the study of all cavitation phenomena. Solving the cavitation bubble dynamics equation can better elucidate the physical principles of bubble dynamics, assisting with the design of hydraulic machinery and fluid control. This paper employs a fourth-order explicit Runge–Kutta numerical method to solve the translational Keller–Miksis model for cavitation bubbles. It analyzes the collapse time, velocity, as well as the motion and force characteristics of bubbles under different wall distances γ values. The results indicate that as the distance between the cavitation bubble and the wall decreases, the cavitation bubble collapse time increases, the displacement of the center of mass and the amplitude of translational velocity of the cavitation bubble increase, and the minimum radius of the cavitation bubble gradually decreases linearly. During the stage when the cavitation bubble collapses to its minimum radius, the Bjerknes force and resistance experienced by the bubble also increase as the distance to the wall decreases. Especially in the cases where γ = 1.3 and 1.5, during the rebound stage of the bubble, the Bjerknes force and resistance increase, causing the bubble to move away from the wall. Meanwhile, this study proposes a radiation pressure coefficient to characterize the radial vibration behavior of cavitation bubbles when analyzing the radiation sound pressure. It is found that the wall distance has a relatively minor effect on the radiation pressure coefficient, providing an important basis for future research on the effects of different scale bubbles and multiple bubbles. The overall idea of this paper is to numerically solve the bubble dynamics equation, explore the characteristics of bubble dynamics, and elucidate the specific manifestations of physical quantities that affect bubble motion. This provides theoretical references for further engineering applications and flow analysis.

Funder

National Natural Science Foundation of China

Innovation Star Project of Gansu Province

Natural Science Foundation of Gansu Province

Open Research Subject of Key Laboratory of Fluid Machinery and Engineering (Xihua University), Sichuan Province

Publisher

MDPI AG

Reference23 articles.

1. Gas bubbles with organic skin as cavitation nuclei;Fox;J. Acoust. Soc. Am.,1954

2. On the pressure developed in a liquid during the collapse of a spherical cavity;Rayleigh;Philos. Mag.,1917

3. The dynamics of cavitation bubbles;Plesset;J. Appl. Mech.-Trans. ASME,1949

4. Gilmore, F.R. (1952). The Growth or Collapse of a Spherical Bubble in a Viscous Compression Liquid, California Institute of Technology.

5. Bubble oscillations of large amplitude;Keller;J. Acoust. Soc. Am.,1980

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