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Main Authors: Creswell, James, Mukhanov, Viatcheslav, Oz, Yaron
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2409.11898
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author Creswell, James
Mukhanov, Viatcheslav
Oz, Yaron
author_facet Creswell, James
Mukhanov, Viatcheslav
Oz, Yaron
contents Shell models provide a simplified mathematical framework that captures essential features of incompressible fluid turbulence, such as the energy cascade and scaling of the fluid observables. We perform a precision analysis of the direct and inverse cascades in shell models of turbulence, where the velocity field is a real-valued function. We calculate the leading hundred anomalous scaling exponents, the marginal probability distribution functions of the velocity field at different shells, as well as the correlations between different shells. We find that the structure functions in both cascades exhibit a linear Kolomogorov scaling in the inertial range. We argue that the underlying reason for having no intermittency, is the strong correlations between the velocity fields at different shells. We analyze the tails of velocity distribution functions, which offer new insights to the structure of fluid turbulence.
format Preprint
id arxiv_https___arxiv_org_abs_2409_11898
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Direct and inverse cascades scaling in real shell models of turbulence
Creswell, James
Mukhanov, Viatcheslav
Oz, Yaron
Fluid Dynamics
Shell models provide a simplified mathematical framework that captures essential features of incompressible fluid turbulence, such as the energy cascade and scaling of the fluid observables. We perform a precision analysis of the direct and inverse cascades in shell models of turbulence, where the velocity field is a real-valued function. We calculate the leading hundred anomalous scaling exponents, the marginal probability distribution functions of the velocity field at different shells, as well as the correlations between different shells. We find that the structure functions in both cascades exhibit a linear Kolomogorov scaling in the inertial range. We argue that the underlying reason for having no intermittency, is the strong correlations between the velocity fields at different shells. We analyze the tails of velocity distribution functions, which offer new insights to the structure of fluid turbulence.
title Direct and inverse cascades scaling in real shell models of turbulence
topic Fluid Dynamics
url https://arxiv.org/abs/2409.11898