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Geometry and scaling laws of excursion and iso-sets of enstrophy and dissipation in isotropic turbulence
Authors:José Hugo Elsas  Alexander S Szalay
Institution:1. Department of Mechanical Engineering, Johns Hopkins University, Baltimore, MD, USA;2. Instituto de Física, Universidade Federal do Rio de Janeiro, Rio de Janeiro, Brazil;3. Department of Physics and Astronomy and Department of Computer Science, Johns Hopkins University, Baltimore, MD, USA
Abstract:Motivated by interest in the geometry of high intensity events of turbulent flows, we examine the spatial correlation functions of sets where turbulent events are particularly intense. These sets are defined using indicator functions on excursion and iso-value sets. Their geometric scaling properties are analysed by examining possible power-law decay of their radial correlation function. We apply the analysis to enstrophy, dissipation and velocity gradient invariants Q and R and their joint spatial distributions, using data from a direct numerical simulation of isotropic turbulence at Reλ ≈ 430. While no fractal scaling is found in the inertial range using box-counting in the finite Reynolds number flow considered here, power-law scaling in the inertial range is found in the radial correlation functions. Thus, a geometric characterisation in terms of these sets’ correlation dimension is possible. Strong dependence on the enstrophy and dissipation threshold is found, consistent with multifractal behaviour. Nevertheless, the lack of scaling of the box-counting analysis precludes direct quantitative comparisons with earlier work based on multifractal formalism. Surprising trends, such as a lower correlation dimension for strong dissipation events compared to strong enstrophy events, are observed and interpreted in terms of spatial coherence of vortices in the flow.
Keywords:Isotropic turbulence  chaos and fractals  direct numerical simulation
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