Break-up dynamics and drop size distributions created from spiralling liquid jets

Wong, D.C.Y. and Simmons, M.J.H. and Decent, S.P. and Părău, E.I. and King, A.C. (2004) Break-up dynamics and drop size distributions created from spiralling liquid jets. International Journal of Multiphase Flow, 30 (5). pp. 499-520. ISSN 0301-9322

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Abstract

The dynamics of the break-up of spiralling jets of Newtonian liquids were visualised. The jets were created from orifices at the bottom of a 0.085-m-diameter can rotating about its vertical axis and imaged using a high-speed camera. The effects of liquid dynamic viscosity (0.001–0.09 Pa s), rotation rate (5–31 rad s−1) and orifice size (0.001 and 0.003 m) upon the jet break-up and drop size distributions produced in the Rayleigh regime were investigated. The ranges of dimensionless parameters were 1<Re<103, 0.2<Rb<4, 0.5<We<25 and 5×10−3<Oh<4×10−1. Four generic break-up modes identified were a strong function of dynamic viscosity and jet exit velocity. A flow pattern map of Ohnesorge number against Weber number enabled prediction of these modes. Increasing the can rotation rate increases jet exit velocity due to centrifugal forces and the trajectory of the jet becomes more curved. The break-up dynamics of the jets were non-linear, although some agreement between measured break-up lengths with the linear stability analysis developed previously was noted at low Reynolds numbers. A non-linear theoretical analysis is required to elucidate the important features.

Item Type:
Journal Article
Journal or Publication Title:
International Journal of Multiphase Flow
Uncontrolled Keywords:
/dk/atira/pure/subjectarea/asjc/3100
Subjects:
?? physics and astronomy(all)mechanical engineeringfluid flow and transfer processes ??
Departments:
ID Code:
235016
Deposited By:
Deposited On:
22 Jan 2026 10:25
Refereed?:
Yes
Published?:
Published
Last Modified:
22 Jan 2026 22:45