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arXiv · astro-ph/0312505

Self-similar scaling in decaying numerical turbulence

Abstract

Decaying turbulence is studied numerically using as initial condition a random flow whose shell-integrated energy spectrum increases with wavenumber k like k^q. Alternatively, initial conditions are generated from a driven turbulence simulation by simply stopping the driving. It is known that the dependence of the decaying energy spectrum on wavenumber, time, and viscosity can be collapsed onto a unique scaling function that depends only on two parameters. This is confirmed using three-dimensional simulations and the dependence of the scaling function on its two arguments is determined.

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BibTeXRIS

Tarek A. Yousef, Nils Erland L. Haugen, Axel Brandenburg. 2004-05-24. Self-similar scaling in decaying numerical turbulence. https://doi.org/10.1103/physreve.69.056303

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