Kiloparsec-scale turbulence driven by reionization may grow intergalactic magnetic fields

Fuente: arXiv
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Autores principales: Cain, Christopher, McQuinn, Matthew, Scannapieco, Evan, D'Aloisio, Anson, Trac, Hy
Formato: Preprint
Publicado: 2025
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author Cain, Christopher
McQuinn, Matthew
Scannapieco, Evan
D'Aloisio, Anson
Trac, Hy
author_facet Cain, Christopher
McQuinn, Matthew
Scannapieco, Evan
D'Aloisio, Anson
Trac, Hy
contents The intergalactic medium (IGM) underwent intense heating that resulted in pressure disequilibrium in the wake of ionization fronts during cosmic reionization. The dynamical relaxation to restore pressure balance may have driven small-scale turbulence and, hence, the amplification of intergalactic magnetic fields. We investigate this possibility for the first time using a suite of $\approx 100$ pc resolution radiation-hydrodynamics simulations of IGM gas dynamics. We show that as the spatial resolution improves beyond that achieved with most prior studies, much of the IGM becomes turbulent unless it was pre-heated to $\gg 100~$K before reionization. In our most turbulent simulations, we find that the gas energy spectrum follows the expected $k^{-5/3}$ Kolmogorov scaling to the simulation's resolution, and the eddy turnover time of the turbulence is $< 1$ Gyr at $k \approx 1 ~$kpc$^{-1}$. Turbulence will grow magnetic fields, and we show that the fields grown by reionization-driven turbulence could explain lower limits on the strength of volume-filling B-fields from observations of TeV blazars. As reionization sweeps over the cosmos, this mechanism could create turbulence throughout the cosmic volume with a character that only depends on the amount of IGM preheating.
format Preprint
id arxiv_https___arxiv_org_abs_2504_21082
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Kiloparsec-scale turbulence driven by reionization may grow intergalactic magnetic fields
Cain, Christopher
McQuinn, Matthew
Scannapieco, Evan
D'Aloisio, Anson
Trac, Hy
Cosmology and Nongalactic Astrophysics
Astrophysics of Galaxies
The intergalactic medium (IGM) underwent intense heating that resulted in pressure disequilibrium in the wake of ionization fronts during cosmic reionization. The dynamical relaxation to restore pressure balance may have driven small-scale turbulence and, hence, the amplification of intergalactic magnetic fields. We investigate this possibility for the first time using a suite of $\approx 100$ pc resolution radiation-hydrodynamics simulations of IGM gas dynamics. We show that as the spatial resolution improves beyond that achieved with most prior studies, much of the IGM becomes turbulent unless it was pre-heated to $\gg 100~$K before reionization. In our most turbulent simulations, we find that the gas energy spectrum follows the expected $k^{-5/3}$ Kolmogorov scaling to the simulation's resolution, and the eddy turnover time of the turbulence is $< 1$ Gyr at $k \approx 1 ~$kpc$^{-1}$. Turbulence will grow magnetic fields, and we show that the fields grown by reionization-driven turbulence could explain lower limits on the strength of volume-filling B-fields from observations of TeV blazars. As reionization sweeps over the cosmos, this mechanism could create turbulence throughout the cosmic volume with a character that only depends on the amount of IGM preheating.
title Kiloparsec-scale turbulence driven by reionization may grow intergalactic magnetic fields
topic Cosmology and Nongalactic Astrophysics
Astrophysics of Galaxies
url https://arxiv.org/abs/2504.21082