Published January 1999 | Version v1
Journal article

Microscopic motion of particles flowing through a porous medium

  • 1. Benjamin Levich Institute and Department of Physics, City College of the City University of New York, New York, New York 10031 (United States)
  • 2. Department of Physics, Seoul National University, Seoul 151-742 (Korea, Republic of)

Description

Stokesian dynamics simulations are used to study the microscopic motion of particles suspended in fluids passing through porous media. Model porous media with fixed spherical particles are constructed, and mobile ones move through this fixed bed under the action of an ambient velocity field. The pore scale motion of individual suspended particles at pore junctions are first considered. The relative particle flux into different possible directions exiting from a single pore, for two- and three-dimensional model porous media is found to approximately equal the corresponding fractional channel width or area. Next the waiting time distribution for particles which are delayed in a junction due to a stagnation point caused by a flow bifurcation is considered. The waiting times are found to be controlled by two-particle interactions, and the distributions take the same form in model porous media as in two-particle systems. A simple theoretical estimate of the waiting time is consistent with the simulations. It is found that perturbing such a slow-moving particle by another nearby one leads to rather complicated behavior. Finally, the stability of geometrically trapped particles is studied. For simple model traps, it is found that particles passing nearby can 'relaunch' the trapped particle through its hydrodynamic interaction, although the conditions for relaunching depend sensitively on the details of the trap and its surroundings. copyright 1999 American Institute of Physics

Additional details

Publishing Information

Journal Title
Physics of Fluids (1994)
Journal Volume
11
Journal Issue
1
Journal Page Range
p. 76-87
ISSN
1070-6631
CODEN
PHFLE6