Analysis of Rayleigh-Plesset dynamics for sonoluminescing bubbles
arXiv:chao-dyn/9805016 · doi:10.1017/S0022112098001207
Abstract
Recent work on single bubble sonoluminescence (SBSL) has shown that many features of this phenomenon, especially the dependence of SBSL intensity and stability on experimental parameters, can be explained within a hydrodynamic approach. More specifically, many important properties can already be derived from an analysis of bubble wall dynamics. This dynamics is conveniently described by the Rayleigh-Plesset (RP) equation. In this work we derive analytical approximations for RP dynamics and subsequent analytical laws for parameter dependences. These results include (i) an expression for the onset threshold of SL, (ii) an analytical explanation of the transition from diffusively unstable to stable equilibria for the bubble ambient radius (unstable and stable sonoluminescence), and (iii) a detailed understanding of the resonance structure of the RP equation. It is found that the threshold for SL emission is shifted to larger bubble radii and larger driving pressures if surface tension is enlarged, whereas even a considerable change in liquid viscosity leaves this threshold virtually unaltered. As an enhanced viscosity stabilizes the bubbles against surface oscillations, we conclude that the ideal liquid for violently collapsing, surface stable SL bubbles should have small surface tension and large viscosity, although too large viscosity (>40 times the viscosity of water) will again preclude collapses.
41 pages, 21 eps and ps figures; LaTeX stylefiles replaced because the PostScript file produced at the archive had misplaced and misscaled figures
Cited by in corpus (14)
- A simple model of ultrasound propagation in a cavitating liquid. Part I: Theory, nonlinear attenuation and traveling wave generation
- A simple model of ultrasound propagation in a cavitating liquid. Part II: Primary Bjerknes force and bubble structures
- Modelling large scale airgun-bubble dynamics with highly non-spherical features
- Microbubble formation and pinch-off scaling exponent in flow-focusing devices
- Sonoluminescence as a QED vacuum effect. I: The Physical Scenario
- Segregation of a liquid mixture by a radially oscillating bubble
- Single-bubble sonoluminescence: Shape stability analysis of collapse dynamics in a semianalytical approach
- Analytical expressions for primary Bjerknes force on inertial cavitation bubbles
- Modeling the dynamics of single-bubble sonoluminescence
- Effect of charge on the dynamics of an acoustically forced bubble
- Oscillatory dynamics of a charged microbubble under ultrasound
- Lagrangian statistics of pressure fluctuation events in homogeneous isotropic turbulence
- Toroidal bubbles with circulation in ideal hydrodynamics. A variational approach
- Simulation of the high Mach number motion for bubble collapse in a compressible Euler fluid using Basilisk