Turbulence in nearly incompressible fluids: density spectrum, flows, correlations and implication to the interstellar medium

Interstellar scintillation and angular radio wave broadening measurements show that interstellar and solar wind (electron) density fluctuations exhibit a Kolmogorov-like <i>k</i><sup>-5/3</sup> power spectrum extending over many decades in wavenumber space. The ubiquity of t...

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Main Authors: S. Dastgeer, G. P. Zank
Format: Article
Language:English
Published: Copernicus Publications 2005-01-01
Series:Nonlinear Processes in Geophysics
Online Access:http://www.nonlin-processes-geophys.net/12/139/2005/npg-12-139-2005.pdf
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spelling doaj-6da94a9e708844f38d23d168d77045082020-11-24T23:18:42ZengCopernicus PublicationsNonlinear Processes in Geophysics1023-58091607-79462005-01-01121139148Turbulence in nearly incompressible fluids: density spectrum, flows, correlations and implication to the interstellar mediumS. DastgeerG. P. ZankInterstellar scintillation and angular radio wave broadening measurements show that interstellar and solar wind (electron) density fluctuations exhibit a Kolmogorov-like <i>k</i><sup>-5/3</sup> power spectrum extending over many decades in wavenumber space. The ubiquity of the Kolmogorov-like interstellar medium (ISM) density spectrum led to an explanation based on coupling incompressible magnetohydrodynamic (MHD) fluctuations to density fluctuations through a 'pseudosound' relation within the context of 'nearly incompressible' (NI) hydrodynamics (HD) and MHD models. The NI theory provides a fundamentally different explanation for the observed ISM density spectrum in that the density fluctuations can be a consequence of passive scalar convection due to background incompressible fluctuations. The theory further predicts generation of long-scale structures and various correlations between the density, temperature and the (magneto) acoustic as well as convective pressure fluctuations in the compressible ISM fluids in different thermal regimes that are determined purely by the thermal fluctuation level. In this paper, we present the results of our two dimensional nonlinear fluid simulations, exploring various nonlinear aspects that lead to inertial range ISM turbulence within the context of a NI hydrodymanics model. In qualitative agreement with the NI predictions and the in-situ observations, we find that i) the density fluctuations exhibit a Kolmogorov-like spectrum via a passive convection in the field of the background incompressible fluctuations, ii) the compressible ISM fluctuations form long scale flows and structures, and iii) the density and the temperature fluctuations are anti-correlated.http://www.nonlin-processes-geophys.net/12/139/2005/npg-12-139-2005.pdf
collection DOAJ
language English
format Article
sources DOAJ
author S. Dastgeer
G. P. Zank
spellingShingle S. Dastgeer
G. P. Zank
Turbulence in nearly incompressible fluids: density spectrum, flows, correlations and implication to the interstellar medium
Nonlinear Processes in Geophysics
author_facet S. Dastgeer
G. P. Zank
author_sort S. Dastgeer
title Turbulence in nearly incompressible fluids: density spectrum, flows, correlations and implication to the interstellar medium
title_short Turbulence in nearly incompressible fluids: density spectrum, flows, correlations and implication to the interstellar medium
title_full Turbulence in nearly incompressible fluids: density spectrum, flows, correlations and implication to the interstellar medium
title_fullStr Turbulence in nearly incompressible fluids: density spectrum, flows, correlations and implication to the interstellar medium
title_full_unstemmed Turbulence in nearly incompressible fluids: density spectrum, flows, correlations and implication to the interstellar medium
title_sort turbulence in nearly incompressible fluids: density spectrum, flows, correlations and implication to the interstellar medium
publisher Copernicus Publications
series Nonlinear Processes in Geophysics
issn 1023-5809
1607-7946
publishDate 2005-01-01
description Interstellar scintillation and angular radio wave broadening measurements show that interstellar and solar wind (electron) density fluctuations exhibit a Kolmogorov-like <i>k</i><sup>-5/3</sup> power spectrum extending over many decades in wavenumber space. The ubiquity of the Kolmogorov-like interstellar medium (ISM) density spectrum led to an explanation based on coupling incompressible magnetohydrodynamic (MHD) fluctuations to density fluctuations through a 'pseudosound' relation within the context of 'nearly incompressible' (NI) hydrodynamics (HD) and MHD models. The NI theory provides a fundamentally different explanation for the observed ISM density spectrum in that the density fluctuations can be a consequence of passive scalar convection due to background incompressible fluctuations. The theory further predicts generation of long-scale structures and various correlations between the density, temperature and the (magneto) acoustic as well as convective pressure fluctuations in the compressible ISM fluids in different thermal regimes that are determined purely by the thermal fluctuation level. In this paper, we present the results of our two dimensional nonlinear fluid simulations, exploring various nonlinear aspects that lead to inertial range ISM turbulence within the context of a NI hydrodymanics model. In qualitative agreement with the NI predictions and the in-situ observations, we find that i) the density fluctuations exhibit a Kolmogorov-like spectrum via a passive convection in the field of the background incompressible fluctuations, ii) the compressible ISM fluctuations form long scale flows and structures, and iii) the density and the temperature fluctuations are anti-correlated.
url http://www.nonlin-processes-geophys.net/12/139/2005/npg-12-139-2005.pdf
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