Influence of ambient temperature on cavitation bubble dynamics
arXiv:2505.13883 · doi:10.1017/jfm.2025.10838
Abstract
We investigate the influence of ambient temperature on the dynamics of spark-generated cavitation bubbles over a broad temperature range of 23 to 90. Increasing temperature, the attenuation of collapse intensity of a bubble in a free field is quantitatively characterised through the Rayleigh factor, minimum bubble volume, and maximum collapse velocity. In scenarios where the bubble is initiated near a rigid boundary, this temperature-dependent weakening effect manifests further as a reduction in jet velocity and bubble migration. Additionally, our findings demonstrate that when ambient temperature exceeds 70, secondary cavitation forms near the bubble surface around the moment of maximum bubble expansion, followed by coalescence-induced surface wrinkles. These perturbations trigger Rayleigh-Taylor instability and enhance bubble fission. We determine the internal gas pressure of the bubble at its maximum expansion via the Rayleigh-Plesset equation with the input of bubble radius from experimental measurements. It reveals that the secondary cavitation is derived from the gas pressure descending below the saturated vapor pressure, which provides nucleation-favorable conditions. This study sheds light on the physics behind erosion mitigation in high-temperature fluids from the perspective of cavitation bubble dynamics.
References in corpus (8)
- Scaling laws for jets of single cavitation bubbles
- Shock waves from non-spherical cavitation bubbles
- A theoretical model for compressible bubble dynamics considering phase transition and migration
- Comprehensive analysis of spherical bubble oscillations and shock wave emission in laser-induced cavitation
- Surface bubble nucleation phase space
- Bubble nucleation and jetting inside a millimetric droplet
- Vapor compression and energy dissipation in a collapsing laser-induced bubble
- New insights into the cavitation erosion by bubble collapse at moderate stand-off distances