论文标题

发电机放大了类似乳白色的星系的磁场

A dynamo amplifies the magnetic field of a Milky-Way-like galaxy

论文作者

Ntormousi, Evangelia, Tassis, Konstantinos, Del Sordo, Fabio, Fragkoudi, Francesca, Pakmor, Rüdiger

论文摘要

螺旋星系的磁场是如此强,以至于不能是原始的。它们的典型价值比早期宇宙预测的任何价值高十亿倍。解释这种巨大的增长并将其纳入银河进化论是天体物理学的长期挑战之一。到目前为止,银河磁场持续生长的最成功的理论是alpha-Omega Dynamo。该理论预测了银河系磁场的特征性偶极或四极形态,在外部星系中已经观察到。但是,到目前为止,还没有直接证明在直接的,多物理星系的多物理模拟中运行的平均场发电机。我们在这项工作中这样做。我们采用了包括磁化气态磁盘,暗物质光环,恒星和恒星反馈的数值模型。自然,所得的磁场具有复杂的形态,其中包括强大的随机分量。使用小尺度上的磁场平滑,我们能够将平均值与湍流组件分开并单独分析。我们发现,平均场发电机自然是由于银河系的动力学演变而产生的,并通过一半的回旋将磁场放大了磁场。尽管这些模型具有高度动力学的性质,但该领域平均成分的形态与分析预测相同。该结果强调了平均场发电机在银河进化中的重要性。此外,通过在复杂的银河环境中证明磁场的自然生长,它使我们更近一步了解磁场的宇宙起源。

The magnetic fields of spiral galaxies are so strong that they cannot be primordial. Their typical values are over one billion times higher than any value predicted for the early Universe. Explaining this immense growth and incorporating it in galaxy evolution theories is one of the long-standing challenges in astrophysics. So far, the most successful theory for the sustained growth of the galactic magnetic field is the alpha-omega dynamo. This theory predicts a characteristic dipolar or quadrupolar morphology for the galactic magnetic field, which has been observed in external galaxies. However, so far, there has been no direct demonstration of a mean-field dynamo operating in direct, multi-physics simulations of spiral galaxies. We do so in this work. We employ numerical models of isolated, star-forming spiral galaxies that include a magnetized gaseous disk, a dark matter halo, stars, and stellar feedback. Naturally, the resulting magnetic field has a complex morphology that includes a strong random component. Using a smoothing of the magnetic field on small scales, we are able to separate the mean from the turbulent component and analyze them individually. We find that a mean-field dynamo naturally occurs as a result of the dynamical evolution of the galaxy and amplifies the magnetic field by an order of magnitude over half a Gyr. Despite the highly dynamical nature of these models, the morphology of the mean component of the field is identical to analytical predictions. This result underlines the importance of the mean-field dynamo in galactic evolution. Moreover, by demonstrating the natural growth of the magnetic field in a complex galactic environment, it brings us a step closer to understanding the cosmic origin of magnetic fields.

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