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Size of the top jet drop produced by bubble bursting
Phys. Rev. Fluids 1, 051901(R) – Published 13 September, 2016
DOI: https://doi.org/10.1103/PhysRevFluids.1.051901
Abstract
As a bubble bursts at a liquid-air interface, a tiny liquid jet rises and can release the so-called jet drops. In this paper the size of the top jet drop produced by a bubble bursting is investigated experimentally. We determine and discuss the first scaling law enabling the determination of the top jet drop size as a function of the corresponding mother bubble radius and the liquid properties (viscosity, surface tension, and density), along with its regime of existence. Furthermore, with the aim of decoupling experimentally the effects of bubble collapse and jet dynamics on the drop detachment, we propose a scaling providing the top drop size only as a function of the jet velocity and liquid parameters. In particular, this allows us to untangle the intricate roles of viscosity, gravity, and surface tension in the end pinching of the bubble bursting jet.
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References (21)
- F. Veron, Ocean spray, Annu. Rev. Fluid Mech. 47, 507 (2015).
- H. Lhuissier and E. Villermaux, Bursting bubble aerosols, J. Fluid Mech. 696, 5 (2012).
- E. Ghabache, A. Antkowiak, C. Josserand, and T. Séon, On the physics of fizziness: How bubble bursting controls droplets ejection, Phys. Fluids 26, 121701 (2014).
- G. de Leeuw, E. L. Andreas, M. D. Anguelova, C. W. Fairall, E. R. Lewis, C. O'Dowd, M. Schulz, and S. E. Schwartz, Production flux of sea spray aerosol, Rev. Geophys. 49, 05 (2011).
- E. R. Lewis and S. E. Schwartz, Sea Salt Aerosol Production: Mechanisms, Methods, Measurements and Models, Geophysical Monograph Series Vol. 152 (American Geophysical Union, Washington, DC, 2004).
- G. Liger-Belair, G. Polidori, and P. Jeandet, Recent advances in the science of champagne bubbles, Chem. Soc. Rev. 37, 2490 (2008).
- E. Ghabache, G. Liger-Belair, A. Antkowiak, and T. Séon, Evaporation of droplets in a champagne wine aerosol, Sci. Rep. 6, 25148 (2016).
- E. Ghabache, Surface libre hors équilibre: De l'effondrement de cavité aux jets étirés, Ph.D. thesis, UPMC, 2015, https://tel.archives-ouvertes.fr/tel-01292582.
- D. E. Spiel, The number and size of jet drops produced by air bubbles bursting on a fresh water surface, J. Geophys. Res. 99, 10289 (1994).
- J. B. Keller, A. King, and L. Ting, Blob formation, Phys. Fluids 7, 226 (1995).
- H. A. Stone and L. G. Leal, Relaxation and breakup of an initially extended drop in an otherwise quiescent fluid, J. Fluid Mech. 198, 399 (1989).
- A. A. Castrejón-Pita, J. R. Castrejon-Pita, and I. M. Hutchings, Breakup of Liquid Filaments, Phys. Rev. Lett. 108, 074506 (2012).
- M. Singh, H. M. Haverinen, P. Dhagat, and G. E. Jabbour, Inkjet printing-process and its applications, Adv. Mater. 22, 673 (2010).
- J. M. Gordillo and S. Gekle, Generation and breakup of Worthington jets after cavity collapse. Part 2. Tip breakup of stretched jets, J. Fluid Mech. 663, 331 (2010).
- T. Séon and A. Antkowiak, Large Bubble Rupture Sparks Fast Liquid Jet, Phys. Rev. Lett. 109, 014501 (2012).
- E. Ghabache, T. Séon, and A. Antkowiak, Liquid jet eruption from hollow relaxation, J. Fluid Mech. 761, 206 (2014).
- P. L. L. Walls, L. Henaux, and J. C. Bird, Jet drops from bursting bubbles: How gravity and viscosity couple to inhibit droplet production, Phys. Rev. E 92, 021002 (2015).
- C. F. Kientzler, A. B. Arons, D. C. Blanchard, and A. H. Woodcock, Photographic investigation of the projection of droplets by bubbles bursting at a water surface1, Tellus 6, 1 (1954).
- S. R. Massel, Ocean Waves Breaking and Marine Aerosol Fluxes (Springer, Berlin, 2007).
- G. B Deane and M. D. Stokes, Scale dependence of bubble creation mechanisms in breaking waves, Nature (London) 418, 839 (2002).
- G. Liger-Belair, A. Conreux, S. Villaume, and C. Cilindre, Monitoring the losses of dissolved carbon dioxide from laser-etched champagne glasses, Food Res. Int. 54, 516 (2013).