Numerical approach to frictional fingers
Author(s) -
Jon Alm Eriksen,
Renaud Toussaint,
Knut Jørgen Måløy,
Eirik G. Flekkøy,
Bjørnar Sandnes
Publication year - 2015
Publication title -
physical review e
Language(s) - English
Resource type - Journals
eISSN - 1550-2376
pISSN - 1539-3755
DOI - 10.1103/physreve.92.032203
Subject(s) - discretization , suspension (topology) , mechanics , yield (engineering) , flow (mathematics) , range (aeronautics) , stress (linguistics) , materials science , phase (matter) , air suspension , statistical physics , computer science , simulation , mathematics , physics , mathematical analysis , thermodynamics , composite material , linguistics , philosophy , pure mathematics , quantum mechanics , homotopy , axle
International audienceExperiments on confined two-phase flow systems, involving air and a dense suspension, have revealed a diverse set of flow morphologies. As the air displaces the suspension, the beads that make up the suspension can accumulate along the interface. The dynamics can generate " frictional fingers " of air coated by densely packed grains. We present here a simplified model for the dynamics together with a new numerical strategy for simulating the frictional finger behavior. The model is based on the yield stress criterion of the interface. The discretization scheme allows for simulating a larger range of structures than previous approaches. We further make theoretical predictions for the characteristic width associated with the frictional fingers, based on the yield stress criterion, and compare these to experimental results. The agreement between theory and experiments validates our model and allows us to estimate the unknown parameter in the yield stress criterion, which we use in the simulations
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