On the non-local geometry of turbulence
- 30 April 2008
- journal article
- research article
- Published by Cambridge University Press (CUP) in Journal of Fluid Mechanics
- Vol. 603, 101-135
- https://doi.org/10.1017/s002211200800092x
Abstract
A multi-scale methodology for the study of the non-local geometry of eddy structures in turbulence is developed. Starting from a given three-dimensional field, this consists of three main steps: extraction, characterization and classification of structures. The extraction step is done in two stages. First, a multi-scale decomposition based on the curvelet transform is applied to the full three-dimensional field, resulting in a finite set of component three-dimensional fields, one per scale. Second, by iso-contouring each component field at one or more iso-contour levels, a set of closed iso-surfaces is obtained that represents the structures at that scale. The characterization stage is based on the joint probability density function (p.d.f.), in terms of area coverage on each individual iso-surface, of two differential-geometry properties, the shape index and curvedness, plus the stretching parameter, a dimensionless global invariant of the surface. Taken together, this defines the geometrical signature of the iso-surface. The classification step is based on the construction of a finite set of parameters, obtained from algebraic functions of moments of the joint p.d.f. of each structure, that specify its location as a point in a multi-dimensional ‘feature space’. At each scale the set of points in feature space represents all structures at that scale, for the specified iso-contour value. This then allows the application, to the set, of clustering techniques that search for groups of structures with a common geometry. Results are presented of a first application of this technique to a passive scalar field obtained from 5123direct numerical simulation of scalar mixing by forced, isotropic turbulence (Reλ= 265). These show transition, with decreasing scale, from blob-like structures in the larger scales to blob- and tube-like structures with small or moderate stretching in the inertial range of scales, and then toward tube and, predominantly, sheet-like structures with high level of stretching in the dissipation range of scales. Implications of these results for the dynamical behaviour of passive scalar stirring and mixing by turbulence are discussed.Keywords
This publication has 51 references indexed in Scilit:
- Dynamic Depletion of Vortex Stretching and Non-Blowup of the 3-D Incompressible Euler EquationsJournal of Nonlinear Science, 2006
- A classification method for vortex sheet and tube structures in turbulent flowsPhysics of Fluids, 2001
- Fronts in passive scalar turbulencePhysics of Fluids, 2001
- Passive Scalars in Turbulent FlowsAnnual Review of Fluid Mechanics, 2000
- Direct numerical simulation of a passive scalar with imposed mean gradient in isotropic turbulencePhysics of Fluids, 1996
- The structure of intense vorticity in isotropic turbulenceJournal of Fluid Mechanics, 1993
- Characterization of vortex tubes and sheetsPhysics of Fluids A: Fluid Dynamics, 1993
- Probability distribution, conditional dissipation, and transport of passive temperature fluctuations in grid-generated turbulencePhysics of Fluids A: Fluid Dynamics, 1992
- The local structure of turbulence in incompressible viscous fluid for very large Reynolds numbersProceedings of the Royal Society of London. Series A: Mathematical and Physical Sciences, 1991
- A refinement of previous hypotheses concerning the local structure of turbulence in a viscous incompressible fluid at high Reynolds numberJournal of Fluid Mechanics, 1962