Intermittency measurement in two dimensional bacterial turbulence
Abstract
In this paper, an experimental velocity database of a bacterial collective motion , e.g., \textit{B. subtilis}, in turbulent phase with volume filling fraction provided by Professor Goldstein at the Cambridge University UK, was analyzed to emphasize the scaling behavior of this active turbulence system. This was accomplished by performing a Hilbert-based methodology analysis to retrieve the scaling property without the limitation. A dual-power-law behavior separated by the viscosity scale was observed for the th-order Hilbert moment . This dual-power-law belongs to an inverse-cascade since the scaling range is above the injection scale , e.g., the bacterial body length. The measured scaling exponents of both the small-scale \red{(resp. ) and large-scale (resp. )} motions are convex, showing the multifractality. A lognormal formula was put forward to characterize the multifractal intensity. The measured intermittency parameters are and respectively for the small- and large-scale motions. It implies that the former cascade is more intermittent than the latter one, which is also confirmed by the corresponding singularity spectrum vs . Comparison with the conventional two-dimensional Ekman-Navier-Stokes equation, a continuum model indicates that the origin of the multifractality could be a result of some additional nonlinear interaction terms, which deservers a more careful investigation.
Keywords
Cite
@article{arxiv.1607.07940,
title = {Intermittency measurement in two dimensional bacterial turbulence},
author = {Xiang Qiu and Long Ding and Yongxiang Huang and Ming Chen and Zhiming Lu and Yulu Liu and Quan Zhou},
journal= {arXiv preprint arXiv:1607.07940},
year = {2016}
}
Comments
23 pages, 7 figures. This paper is published on Physical Review E, 93, 062226, 2016