Three-dimensional dynamics of falling films in the presence of insoluble surfactants
File(s)Falling_Films_JFM_Rapids (3).pdf (11.04 MB)
Accepted version
Author(s)
Batchvarov, Assen
Kahouadji, Lyes
Constante-Amores, Cristian R
Norões Gonçalves, Gabriel Farah
Shin, Seungwon
Type
Journal Article
Abstract
We study the effect of insoluble surfactants on the wave dynamics of vertically falling liquid films. We use three-dimensional numerical simulations and employ a hybrid interface-tracking/level-set method, taking into account Marangoni stresses induced by gradients of interfacial surfactant concentration. Our numerical predictions for the evolution of the surfactant-free, three-dimensional wave topology are validated against the experimental work of Park & Nosoko (AIChE J., vol. 49, 2003, pp. 2715–2727). The addition of surfactants is found to influence significantly the development of horseshoe-shaped waves. At low Marangoni numbers, we show that the wave fronts exhibit spanwise oscillations before eventually acquiring a quasi-two-dimensional shape. In addition, the presence of Marangoni stresses is found to suppress the peaks of the travelling waves and preceding capillary wave structures. At high Marangoni numbers, a near-complete rigidification of the interface is observed.
Date Issued
2021-01-10
Date Acceptance
2020-09-12
Citation
Journal of Fluid Mechanics, 2021, 906, pp.A16-1-A16-13
ISSN
0022-1120
Publisher
Cambridge University Press (CUP)
Start Page
A16-1
End Page
A16-13
Journal / Book Title
Journal of Fluid Mechanics
Volume
906
Copyright Statement
© The Author(s), 2020. Published by Cambridge University Press. This paper has been accepted for publication and will appear in a revised form, subsequent to peer-review and/or editorial input by Cambridge University Press.
Identifier
https://www.cambridge.org/core/journals/journal-of-fluid-mechanics/article/threedimensional-dynamics-of-falling-films-in-the-presence-of-insoluble-surfactants/C9896FA174E28ECAE1A8E0C1A2160C48
Subjects
01 Mathematical Sciences
09 Engineering
Fluids & Plasmas
Publication Status
Published
Article Number
A16
Date Publish Online
2020-11-13