Aggregation of magnetic holes in a rotating magnetic field
Abstract
We have experimentally investigated field induced aggregation of nonmagnetic particles confined in a magnetic fluid layer when rotating magnetic fields were applied. After application of a magnetic field rotating in the plane of the fluid layer, the single particles start to form two-dimensional (2D) clusters, like doublets, triangels, and more complex structures. These clusters aggregated again and again to form bigger clusters. During this nonequilibrium process, a broad range of cluster sizes was formed, and the scaling exponents, and , of the number of clusters and average cluster size were calculated. The process could be characterized as diffusion limited cluster-cluster aggregation. We have found that all sizes of clusters that occured during an experiment, fall on a single curve as the dynamic scaling theory predicts. Hovewer, the characteristic scaling exponents and crossover exponents were not universal. A particle tracking method was used to find the dependence of the diffusion coefficients on cluster size . The cluster motions show features of \textit{\emph{Brownian}} motion. The average diffusion coefficients depend on the cluster sizes as a power law where values of as different as and $\gamma=-2.08\pm0. were found in two of the experiments.
Keywords
Cite
@article{arxiv.0806.3447,
title = {Aggregation of magnetic holes in a rotating magnetic field},
author = {Jozef Černák and Geir Helgesen},
journal= {arXiv preprint arXiv:0806.3447},
year = {2009}
}