论文标题
Illustristng仿真中的磁性介质的磁化:扩展,流出驱动气泡的重要性
Magnetization of the intergalactic medium in the IllustrisTNG simulations: the importance of extended, outflow-driven bubbles
论文作者
论文摘要
我们使用Illustristng模拟研究了星系形成物理学对磁性培养基(IGM)磁化的影响。我们证明,受星系和簇流出影响的大规模区域包含的磁场比具有相同电子密度的未影响区域强的数量级强。此外,就像在星系内放大的磁场一样,这些磁场不取决于原始种子,即采用的磁场强度的初始条件。我们研究这些强场区域的体积填充部分及其在随机视线中的发生。作为第一个应用,我们使用这些结果将边界放在CMB的光谱失真的光子轴转换上。随着光子轴耦合的生长,可以使用有关通过IGM传播伽马射线光子传播的数据来获得更强的约束。最后,我们还简要讨论了结果对法拉第旋转测量的潜在应用。
We study the effects of galaxy formation physics on the magnetization of the intergalactic medium (IGM) using the IllustrisTNG simulations. We demonstrate that large-scale regions affected by the outflows from galaxies and clusters contain magnetic fields that are several orders of magnitude stronger than in unaffected regions with the same electron density. Moreover, like magnetic fields amplified inside galaxies, these magnetic fields do not depend on the primordial seed, i.e. the adopted initial conditions for magnetic field strength. We study the volume filling fraction of these strong field regions and their occurrence in random lines of sight. As a first application, we use these results to put bounds on the photon-axion conversion from spectral distortion of the CMB. As photon-axion coupling grows with energy, stronger constraints could potentially be obtained using data on the propagation of gamma-ray photons through the IGM. Finally, we also briefly discuss potential applications of our results to the Faraday Rotation measurements.