Hierarchical bubble size distributions in coarsening wet liquid foams

Author:

Galvani Nicolò12,Pasquet Marina3,Mukherjee Arnab1,Requier Alice3,Cohen-Addad Sylvie14ORCID,Pitois Olivier2,Höhler Reinhard14,Rio Emmanuelle3ORCID,Salonen Anniina3ORCID,Durian Douglas J.56ORCID,Langevin Dominique3ORCID

Affiliation:

1. Sorbonne Université, CNRS, Institut des NanoSciences de Paris, Paris 75005, France

2. Lab Navier, Univ Gustave Eiffel, Ecole Nationale des Ponts et Chaussées, CNRS, Champs-sur-Marne 77420, France

3. Université Paris-Saclay, CNRS, Laboratoire de Physique des Solides, Orsay 91405, France

4. Université Gustave Eiffel, Champs-sur-Marne 77420, France

5. Department of Physics and Astronomy, University of Pennsylvania, Philadelphia, PA 19104

6. Center for Computational Biology, Flatiron Institute, Simons Foundation, New York, NY 10010

Abstract

Coarsening of two-phase systems is crucial for the stability of dense particle packings such as alloys, foams, emulsions, or supersaturated solutions. Mean field theories predict an asymptotic scaling state with a broad particle size distribution. Aqueous foams are good model systems for investigations of coarsening-induced structures, because the continuous liquid as well as the dispersed gas phases are uniform and isotropic. We present coarsening experiments on wet foams, with liquid fractions up to their unjamming point and beyond, that are performed under microgravity to avoid gravitational drainage. As time elapses, a self-similar regime is reached where the normalized bubble size distribution is invariant. Unexpectedly, the distribution features an excess of small roaming bubbles, mobile within the network of jammed larger bubbles. These roaming bubbles are reminiscent of rattlers in granular materials (grains not subjected to contact forces). We identify a critical liquid fraction ϕ , above which the bubble assembly unjams and the two bubble populations merge into a single narrow distribution of bubbly liquids. Unexpectedly, ϕ is larger than the random close packing fraction of the foam ϕ rcp . This is because, between ϕ rcp and ϕ , the large bubbles remain connected due to a weak adhesion between bubbles. We present models that identify the physical mechanisms explaining our observations. We propose a new comprehensive view of the coarsening phenomenon in wet foams. Our results should be applicable to other phase-separating systems and they may also help to control the elaboration of solid foams with hierarchical structures.

Funder

European Space Agency

Centre National d'Etudes Spatiales

NASA | Science Mission Directorate

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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