Crossover between Rayleigh-Taylor Instability and turbulent cascading atomization mechanism in the bag-breakup regime
arXiv:1002.1281 · doi:10.1103/PhysRevE.84.016318
Abstract
The question whether liquid atomization (or pulverization) resorts to instability dynamics (through refinements of Rayleigh-Plateau, Rayleigh-Taylor or Kelvin-Helmholtz mechanism) or to turbulent cascades similar to Richardson and Kolmogorov first ideas seems to be still open. In this paper, we report experimental evidences that both mechanisms are needed to explain the spray drop PDF obtained from an industrial nozzle. Instability of Rayleigh-Taylor kind governs the size of the largest droplets while the smallest ones obey a PDF given by a turbulent cascading mechanism resulting in a log-Lévy stable law of stability parameter close to 1.68. This value, very close to the inverse of the Flory exponent, can be related to a recent model for intermittency modeling stemming from self-avoiding random vortex stretching.
new alpha version (precedent was a draft)
References in corpus (4)
- Kolmogorov scaling and intermittency in Rayleigh-Taylor turbulence
- Multifractality of Drop Breakup in Air-blast Nozzle Atomization Process
- Similarity between the primary and secondary air-assisted liquid jet breakup mechanism
- A simple model for turbulence intermittencies based on self-avoiding random vortex stretching