| Literature DB >> 27532243 |
Tyler Olsen1, Ahmed Helal, Gareth H McKinley, Ken Kamrin.
Abstract
We propose a model for the evolution of the conductivity tensor for a flowing suspension of electrically conductive particles. We use discrete particle numerical simulations together with a continuum physical framework to construct an evolution law for the suspension microstructure during flow. This model is then coupled with a relationship between the microstructure and the electrical conductivity tensor. Certain parameters of the joint model are fit experimentally using rheo-electrical conductivity measurements of carbon black suspensions under flow over a range of shear rates. The model is applied to the case of steady shearing as well as time-varying conductivity of unsteady flow experiments. We find that the model prediction agrees closely with the measured experimental data in all cases.Year: 2016 PMID: 27532243 DOI: 10.1039/c6sm01199c
Source DB: PubMed Journal: Soft Matter ISSN: 1744-683X Impact factor: 3.679