## Abstract The alignment and the aggregation of particles in a viscoelastic fluid in simple shear flow are qualitatively analyzed using a twoβdimensional direct numerical simulation. Depending on the shear thinning, solvent viscosity, and Weissenburg number, a typical sequence in structural transi
Stokesian Dynamics Simulations of Ferromagnetic Colloidal Dispersions Subjected to a Sinusoidal Shear Flow
β Scribed by Akira Satoh; Geoff N. Coverdale; Roy W. Chantrell
- Publisher
- Elsevier Science
- Year
- 2000
- Tongue
- English
- Weight
- 414 KB
- Volume
- 231
- Category
- Article
- ISSN
- 0021-9797
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β¦ Synopsis
We have conducted Stokesian dynamics simulations to investigate the dynamic properties of ferromagnetic colloidal dispersions subjected to a sinusoidal shear flow. Thick chain-like cluster formation is significantly influenced by an oscillatory shear flow even if the amplitude is relatively small, since the internal structures of thick chain-like clusters are highly sensitive to the change in the direction of the shear flow. The motion of thick chain-like clusters is out of phase to a sinusoidal shear rate, and the phase difference is strongly correlated with that of the viscosity and normal stress coefficients. The viscoelastic properties become more apparent with decreasing frequency of the oscillatory shear flow, since such properties have a strong relationship with the thick chain-like cluster formation. In other words, since thick chain-like clusters are more stable for the case of a smaller frequency shear flow, such stable clusters induce significant viscoelastic properties of ferromagnetic colloidal dispersions in a strong, applied magnetic field.
π SIMILAR VOLUMES
liquids (2) and specifically by the Derjaguin-Landau-Ver-A colloidal system of strongly charged particles, confined bewey-Oberbeek (DLVO) model to account for the interactween two charged walls, is studied under static conditions and tions between colloidal particles in the bulk (3). However, in the