Viscous froth model applied to multiple topological transformations of bubbles flowing in a channel: three-bubble case

Author:

Torres-Ulloa Carlos123,Grassia Paul1ORCID

Affiliation:

1. Department of Chemical and Process Engineering, University of Strathclyde, James Weir Building, 75 Montrose Street, Glasgow G11XJ, UK

2. Centro de Investigación, Innovación y Creación (CIIC), Universidad Católica de Temuco, Rudecindo Ortega' 03690, Temuco, Chile

3. Departamento de Ciencias Matemáticas y Físicas, Facultad de Ingeniería, Universidad Católica de Temuco, Rudecindo Ortega 03694, Temuco, Chile

Abstract

A two-dimensional foam system comprised of three bubbles is studied via dynamic simulations with the viscous froth model. The bubbles are arranged in a staircase configuration and move along a channel due to an imposed driving back pressure. Depending on the bubble size relative to channel size, the three-bubble system can undergo topological transformations (as for a simpler staircase structure, known as the simple lens) or it can reach a geometrically invariant migrating state (as for an infinite staircase structure). A methodology used previously determined the system evolution up to the first topological transformation, but evolution beyond this was not studied before. To address this, unsteady state three-bubble simulations are realized here, extending beyond the first transformation. For sufficiently high imposed back pressures, a sequence of topological transformations occurs before a steadily migrating shape is reached, typically in a topology such that an equal number of films connect to both channel walls.

Funder

Universidad Catolica de Temuco

Engineering and Physical Sciences Research Council

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

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