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Numerical simulation of particles movement in cellular flows under the influence of magnetic forces
Author(s) -
Hriberšek Matjaž,
Steinmann Paul,
Ravnik Jure,
Vogel Franziska
Publication year - 2011
Publication title -
pamm
Language(s) - English
Resource type - Journals
ISSN - 1617-7061
DOI - 10.1002/pamm.201110276
Subject(s) - mechanics , magnetic field , drag , buoyancy , physics , magnetosphere particle motion , classical mechanics , pressure gradient force , particle (ecology) , conservative force , flow (mathematics) , body force , geology , oceanography , quantum mechanics
A numerical model of particle motion in fluid flow under the influence of hydrodynamic and magnetic forces is presented. As computational tool, a flow solver based on the Boundary Element Method is used. The Euler‐Lagrange formulation of multiphase flow is considered. In the case of a particle with a magnetic moment in a nonuniform external magnetic field, the Kelvin body force acts on a single particle. The derived Lagrangian particle tracking algorithm is used for simulation of dilute suspensions of particles in viscous flows taking into account gravity, buoyancy, drag, pressure gradient, added mass and magnetophoretic force. As a benchmark test case the magnetite particle motion in cellular flow field of water is computed with and without the action of the magnetic force. The effect of the Kelvin force on particle motion and separation from the main flow is studied for a predefined magnetic field and different values of magnetic flux density. (© 2011 Wiley‐VCH Verlag GmbH & Co. KGaA, Weinheim)

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