Capillary jet instability under the influence of gravity


Autoria(s): Cheong, B. S.; Howes, T.
Contribuinte(s)

A. Bell

Data(s)

01/06/2004

Resumo

The focus of this paper is on the effect of gravity stretching on disturbed capillary jet instability. Break-up and droplet formation under low flows are simulated using finite difference solution of a one-dimensional approximation of disturbed capillary jet instability chosen from the work by Eggers and Dupont (J. Fluid Mech. 155 (1994) 289). Experiments were conducted using water and aqueous glycerol solutions to compare with simulations. We use a gravity parameter, G, which quantifies gravity stretching by relating flow velocity, orifice size and acceleration and is the reciprocal of the Fronde number. The optimum disturbance frequency Omega(opt) was found to be inversely proportional to G. However, this relationship appears to be complex for the range of G's investigated. At low G, the relationship between Omega(opt) and G appears to be linear but takes on a weakly decaying like trend as G increases. As flows are lowered, the satellite-free regime decreases, although experimental observation found that merging of main and satellite drops sometimes offset this effect to result in monodispersed droplet trains post break-up. Viscosity did not significantly affect the relationship between the disturbance frequency and G, although satellite drops could be seen more clearly close to the upper limit for instability at high G's. It is possible to define regimes of satellite formation under low flows by considering local wavenumbers at the point of instability. (C) 2004 Elsevier Ltd. All rights reserved.

Identificador

http://espace.library.uq.edu.au/view/UQ:68348

Idioma(s)

eng

Publicador

Pergamon-elsevier Science Ltd

Palavras-Chave #Engineering, Chemical #Capillary Jet Instability #Optimum Wavenumber #Simulation #Nonlinear Dynamics #Drop #Multiphase Flow #Viscous-liquid Jet #Droplet Formation #Breakup #Prediction #C1 #290699 Chemical Engineering not elsewhere classified #780102 Physical sciences
Tipo

Journal Article