Direct simulation of electrorheological suspensions
Document Type
Article
Publication Date
12-1-2000
Abstract
A new distributed multiplier/fictitious (DLM) domain method is developed for direct simulation of electrorheological (ER) suspensions subjected to spatially uniform electrical fields. The method is implemented both in two and three dimensions. The fluid-particle system is treated implicitly using the combined weak formulation described in [1,2]. The governing Navier-Stokes equations for the fluid are solved everywhere, including the interior of the particles. The flow inside the particles is forced to be a rigid body motion by a distribution of Lagrange multipliers. The electrostatic force acting on the polarized spherical particles is modeled based on the point-dipole approximation. Using our code we have studied the time evolution of particle-scale structures of ER suspensions in channels subjected to the pressure driven flow. In our study, the flow direction is perpendicular to that of the electric field. Simulations show that when the hydrodynamic force is zero, or very small compared to the electrostatic force, the particles form chains that are aligned approximately parallel to the direction of electric field. But, when the magnitude of hydrodynamic force is comparable to that of the electrostatic force the particle chains orient at an angle with the direction of the electric field. The angle between the particle chain and the direction of the electric field depends on the relative strengths of the hydrodynamic and electrostatic forces.
Identifier
0242708996 (Scopus)
Publication Title
American Society of Mechanical Engineers Fluids Engineering Division Publication FED
ISSN
08888116
First Page
179
Last Page
185
Volume
255
Recommended Citation
Wang, Aijun; Singh, Pushpendra; and Aubry, Nadine, "Direct simulation of electrorheological suspensions" (2000). Faculty Publications. 15472.
https://digitalcommons.njit.edu/fac_pubs/15472
