Turbulence without Richardson-Kolmogorov cascade
Abstract
We present an experimental investigation of intense turbulence generated by a class of low-blockage space-filling fractal square grids. We confirm the existence of a protacted production region followed by a decaying region, as first reported by Hurst & Vassilicos (Physics of Fluids, 2007). We show that the centerline streamwise variation of most of the statistical properties of the turbulent flow can be scaled by a wake interaction length-scale . We also confirm the finding of Seoud and Vassilicos (Physics of Fluids, 2007) that the ratio of the integral length-scale to the Taylor micro-scale remains constant in the decaying region whereas the Reynolds number strongly decreases. As a result the scaling which follows from the scaling of the dissipation rate in boundary-free shear flows and in usual grid-generated turbulence does not hold here. However, we show that the ratio is an increasing function of the inlet Reynolds number . This extraordinary decoupling is consistent with a self-preserving single length-scale decaying homogeneous turbulence proposed by George & Wang (Physics of Fluids, 2009) with which our results are compared.
Cite
@article{arxiv.0911.0841,
title = {Turbulence without Richardson-Kolmogorov cascade},
author = {Nicolas Mazellier and Christos Vassilicos},
journal= {arXiv preprint arXiv:0911.0841},
year = {2015}
}
Comments
37 pages, 25 figures, submitted to Physics of Fluids, revised version (shortened introduction and conclusion)