Bounding film drainage in common thin films


Autoria(s): Coons, J. E.; Halley, P. J.; McGlashan, S. A.; Tran-Cong, T.
Contribuinte(s)

H. Moehwald

D. C. Prieve

D. N. Furlong

Data(s)

01/08/2005

Resumo

A review of thin film drainage models is presented in which the predictions of thinning velocities and drainage times are compared to reported values on foam and emulsion films found in the literature. Free standing films with tangentially immobile interfaces and suppressed electrostatic repulsion are considered, such as those studied in capillary cells. The experimental thinning velocities and drainage times of foams and emulsions are shown to be bounded by predictions from the Reynolds and the theoretical MTsR equations. The semi-empirical MTsR and the surface wave equations were the most consistently accurate with all of the films considered. These results are used in an accompanying paper to develop scaling laws that bound the critical film thickness of foam and emulsion films. (c) 2005 Elsevier B.V. All rights reserved.

Identificador

http://espace.library.uq.edu.au/view/UQ:78194

Idioma(s)

eng

Publicador

Elsevier Science B. V.

Palavras-Chave #Chemistry, Physical #Thin Films #Thinning Velocity #Film Drainage #Scaling Law #Spontaneous Rupture #Liquid-films #Critical Thickness #Foam Stability #Emulsion Films #Surfactant #Hydrodynamics #Interfaces #Rupture #C1 #290600 Chemical Engineering #670705 Plastic products (incl. construction materials)
Tipo

Journal Article