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Large scale structure from viscous dark matter
Cosmological perturbations of sufficiently long wavelength admit a fluid dynamic description. We consider modes with wavevectors below a scale $k_m$ for which the dynamics is only mildly non-linear. The leading effect of modes above that scale can be accounted for by effective non-equilibrium viscos...
Autores principales: | , , , , |
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Lenguaje: | eng |
Publicado: |
2015
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Materias: | |
Acceso en línea: | https://dx.doi.org/10.1088/1475-7516/2015/11/049 http://cds.cern.ch/record/2037741 |
_version_ | 1780947691249860608 |
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author | Blas, Diego Floerchinger, Stefan Garny, Mathias Tetradis, Nikolaos Wiedemann, Urs Achim |
author_facet | Blas, Diego Floerchinger, Stefan Garny, Mathias Tetradis, Nikolaos Wiedemann, Urs Achim |
author_sort | Blas, Diego |
collection | CERN |
description | Cosmological perturbations of sufficiently long wavelength admit a fluid dynamic description. We consider modes with wavevectors below a scale $k_m$ for which the dynamics is only mildly non-linear. The leading effect of modes above that scale can be accounted for by effective non-equilibrium viscosity and pressure terms. For mildly non-linear scales, these mainly arise from momentum transport within the ideal and cold but inhomogeneous fluid, while momentum transport due to more microscopic degrees of freedom is suppressed. As a consequence, concrete expressions with no free parameters, except the matching scale $k_m$, can be derived from matching evolution equations to standard cosmological perturbation theory. Two-loop calculations of the matter power spectrum in the viscous theory lead to excellent agreement with $N$-body simulations up to scales $k=0.2 \, h/$Mpc. The convergence properties in the ultraviolet are better than for standard perturbation theory and the results are robust with respect to variations of the matching scale. |
id | cern-2037741 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2015 |
record_format | invenio |
spelling | cern-20377412023-01-26T07:51:49Zdoi:10.1088/1475-7516/2015/11/049http://cds.cern.ch/record/2037741engBlas, DiegoFloerchinger, StefanGarny, MathiasTetradis, NikolaosWiedemann, Urs AchimLarge scale structure from viscous dark matterAstrophysics and AstronomyCosmological perturbations of sufficiently long wavelength admit a fluid dynamic description. We consider modes with wavevectors below a scale $k_m$ for which the dynamics is only mildly non-linear. The leading effect of modes above that scale can be accounted for by effective non-equilibrium viscosity and pressure terms. For mildly non-linear scales, these mainly arise from momentum transport within the ideal and cold but inhomogeneous fluid, while momentum transport due to more microscopic degrees of freedom is suppressed. As a consequence, concrete expressions with no free parameters, except the matching scale $k_m$, can be derived from matching evolution equations to standard cosmological perturbation theory. Two-loop calculations of the matter power spectrum in the viscous theory lead to excellent agreement with $N$-body simulations up to scales $k=0.2 \, h/$Mpc. The convergence properties in the ultraviolet are better than for standard perturbation theory and the results are robust with respect to variations of the matching scale.Cosmological perturbations of sufficiently long wavelength admit a fluid dynamic description. We consider modes with wavevectors below a scale km for which the dynamics is only mildly non-linear. The leading effect of modes above that scale can be accounted for by effective non-equilibrium viscosity and pressure terms. For mildly non-linear scales, these mainly arise from momentum transport within the ideal and cold but inhomogeneous fluid, while momentum transport due to more microscopic degrees of freedom is suppressed. As a consequence, concrete expressions with no free parameters, except the matching scale km, can be derived from matching evolution equations to standard cosmological perturbation theory. Two-loop calculations of the matter power spectrum in the viscous theory lead to excellent agreement with N-body simulations up to scales k=0.2 h/Mpc. The convergence properties in the ultraviolet are better than for standard perturbation theory and the results are robust with respect to variations of the matching scale.Cosmological perturbations of sufficiently long wavelength admit a fluid dynamic description. We consider modes with wavevectors below a scale $k_m$ for which the dynamics is only mildly non-linear. The leading effect of modes above that scale can be accounted for by effective non-equilibrium viscosity and pressure terms. For mildly non-linear scales, these mainly arise from momentum transport within the ideal and cold but inhomogeneous fluid, while momentum transport due to more microscopic degrees of freedom is suppressed. As a consequence, concrete expressions with no free parameters, except the matching scale $k_m$, can be derived from matching evolution equations to standard cosmological perturbation theory. Two-loop calculations of the matter power spectrum in the viscous theory lead to excellent agreement with $N$-body simulations up to scales $k=0.2 \, h/$Mpc. The convergence properties in the ultraviolet are better than for standard perturbation theory and the results are robust with respect to variations of the matching scale.arXiv:1507.06665CERN-PH-TH-2015-172CERN-PH-TH-2015-172oai:cds.cern.ch:20377412015-07-23 |
spellingShingle | Astrophysics and Astronomy Blas, Diego Floerchinger, Stefan Garny, Mathias Tetradis, Nikolaos Wiedemann, Urs Achim Large scale structure from viscous dark matter |
title | Large scale structure from viscous dark matter |
title_full | Large scale structure from viscous dark matter |
title_fullStr | Large scale structure from viscous dark matter |
title_full_unstemmed | Large scale structure from viscous dark matter |
title_short | Large scale structure from viscous dark matter |
title_sort | large scale structure from viscous dark matter |
topic | Astrophysics and Astronomy |
url | https://dx.doi.org/10.1088/1475-7516/2015/11/049 http://cds.cern.ch/record/2037741 |
work_keys_str_mv | AT blasdiego largescalestructurefromviscousdarkmatter AT floerchingerstefan largescalestructurefromviscousdarkmatter AT garnymathias largescalestructurefromviscousdarkmatter AT tetradisnikolaos largescalestructurefromviscousdarkmatter AT wiedemannursachim largescalestructurefromviscousdarkmatter |