论文标题

揭开星系中磁场的起源

Unraveling the origin of magnetic fields in galaxies

论文作者

Martin-Alvarez, Sergio, Katz, Harley, Sijacki, Debora, Devriendt, Julien, Slyz, Adrianne

论文摘要

尽管存在无处不在,但关于银河系和宇宙磁场仍有许多开放问题。具体而言,当前的观察约束不能排除在早期宇宙中产生星系中观察到的磁场或具有天体物理性质的磁场。由此,我们使用磁性示踪剂算法来研究整个宇宙时间的星系中原始磁场的特征是否持续存在。我们在四种情况下模拟了一个类似银河系的星系:仅被原始磁场磁化,仅被SN注射磁场磁性磁化,并且两个合并的原始 + SN磁化案例。我们发现,一旦考虑到具有共同强度的原始磁场$ b_0> 10^{ - 12} $ g,它们仍然是星系磁化的主要来源。我们的磁性示踪剂表明,即使结合了磁化的银河系来源,当原始磁场很强时,它们在模拟星系的温暖金属贫困相中采购大型磁场。在这种情况下,环境结肠层和银河系培养基可用于探测$ b_0 $,而不会造成磁场污染的风险。此外,可以通过研究局部气体金属性来推断磁场是原始的还是天体物理的。结果,我们预测,星系中磁场的未来最新观测设施将有可能揭示我们宇宙的天体物理和原始磁成分。

Despite their ubiquity, there are many open questions regarding galactic and cosmic magnetic fields. Specifically, current observational constraints cannot rule out if magnetic fields observed in galaxies were generated in the Early Universe or are of astrophysical nature. Motivated by this we use our magnetic tracers algorithm to investigate whether the signatures of primordial magnetic fields persist in galaxies throughout cosmic time. We simulate a Milky Way-like galaxy in four scenarios: magnetised solely by primordial magnetic fields, magnetised exclusively by SN-injected magnetic fields, and two combined primordial + SN magnetisation cases. We find that once primordial magnetic fields with a comoving strength $B_0 >10^{-12}$ G are considered, they remain the primary source of galaxy magnetisation. Our magnetic tracers show that, even combined with galactic sources of magnetisation, when primordial magnetic fields are strong, they source the large-scale fields in the warm metal-poor phase of the simulated galaxy. In this case, the circumgalactic and intergalactic medium can be used to probe $B_0$ without risk of pollution by magnetic fields originated in the galaxy. Furthermore, whether magnetic fields are primordial or astrophysically-sourced can be inferred by studying local gas metallicity. As a result, we predict that future state-of-the-art observational facilities of magnetic fields in galaxies will have the potential to unravel astrophysical and primordial magnetic components of our Universe.

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