Fluid flow through packings of elastic shells.

Phys Rev E

Departments of Physics and Integrative Biology, University of California, Berkeley, California 94720, USA.

Published: February 2019

AI Article Synopsis

  • Fluid transport in compacted granular materials, particularly those with strained granules, is under-researched compared to geological samples.
  • The study utilizes finite-element and lattice-Boltzmann methods to model liquid flow in deformable elastic shell packings, revealing that flow ceases when material porosity drops below a critical threshold—similar to a percolation transition.
  • A simplified permeability model, likening the complex material to disordered capillaries influenced by percolation, helps describe fluid flow behavior as hydraulic tortuosity increases and hydraulic radius decreases approaching the threshold.

Article Abstract

Fluid transport in porous materials is commonly studied in geological samples (soil, sediments, etc.) or idealized systems, but the fluid flow through compacted granular materials, consisting of substantially strained granules, remains relatively unexplored. As a step toward filling this gap, we study a model of liquid transport in packings of deformable elastic shells using finite-element and lattice-Boltzmann methods. We find that the fluid flow abruptly vanishes as the porosity of the material falls below a critical value, and the flow obstruction exhibits features of a percolation transition. We further show that the fluid flow can be captured by a simplified permeability model in which the complex porous material is replaced by a collection of disordered capillaries, which are distributed and shaped by the percolation transition. To that end, we numerically explore the divergence of hydraulic tortuosity τ_{H} and the decrease of a hydraulic radius R_{h} as the percolation threshold is approached. We interpret our results in terms of scaling predictions derived from the percolation theory applied to random packings of spheres.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6542697PMC
http://dx.doi.org/10.1103/PhysRevE.99.023103DOI Listing

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