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首页> 外文期刊>The Astrophysical Journal. Letters >AN EMPIRICAL RELATION BETWEEN THE LARGE-SCALE MAGNETIC FIELD AND THE DYNAMICAL MASS IN GALAXIES
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AN EMPIRICAL RELATION BETWEEN THE LARGE-SCALE MAGNETIC FIELD AND THE DYNAMICAL MASS IN GALAXIES

机译:星系中大型磁场与动态质量之间的经验关系

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The origin and evolution of cosmic magnetic fields as well as the influence of the magnetic fields on the evolution of galaxies are unknown. Though not without challenges, the dynamo theory can explain the large-scale coherent magnetic fields that govern galaxies, but observational evidence for the theory is so far very scarce. Putting together the available data of non-interacting, non-cluster galaxies with known large-scale magnetic fields, we find a tight correlation between the integrated polarized flux density, S-PI, and the rotation speed, v(rot), of galaxies. This leads to an almost linear correlation between the large-scale magnetic field (B) over bar and v(rot), assuming that the number of cosmic-ray electrons is proportional to the star formation rate, and a super-linear correlation assuming equipartition between magnetic fields and cosmic rays. This correlation cannot be attributed to an active linear alpha-Omega dynamo, as no correlation holds with global shear or angular speed. It indicates instead a coupling between the large-scale magnetic field and the dynamical mass of the galaxies, (B) over bar similar to M-dyn(0.25-0.4). Hence, faster rotating and/or more massive galaxies have stronger large-scale magnetic fields. The observed (B) over bar - nu(rot) correlation shows that the anisotropic turbulent magnetic field dominates (B) over bar in fast rotating galaxies as the turbulent magnetic field, coupled with gas, is enhanced and ordered due to the strong gas compression and/or local shear in these systems. This study supports a. stationary condition for the large-scale magnetic field as long as the dynamical mass of galaxies is constant.
机译:未知宇宙磁场的起源和演化以及磁场对星系演化的影响。尽管不是没有挑战,但发电机理论可以解释控制星系的大范围相干磁场,但是到目前为止,该理论的观测证据十分匮乏。将已知大范围磁场的非相互作用,非团簇星系的可用数据汇总在一起,我们发现积分极化通量密度S-PI与星系旋转速度v(rot)之间存在紧密的相关性。假定宇宙射线电子的数量与恒星形成率成正比,这将导致bar上的大范围磁场(B)与v(rot)之间几乎呈线性相关,而假定等分的情况则导致超线性相关在磁场和宇宙射线之间。这种相关性不能归因于有效的线性α-Ω发电机,因为没有相关性与整体剪切或角速度有关。相反,它指示类似于M-dyn(0.25-0.4)的大磁场和星系的动态质量之间的耦合(B)。因此,旋转速度更快和/或质量更大的星系具有更强的大规模磁场。观察到的(B)超过bar-nu(rot)的相关性表明,由于湍流磁场与气体耦合,由于强烈的气体压缩而增强和有序,因此各向异性湍流磁场在快速旋转的星系中占主导地位(B)在bar之上和/或这些系统中的局部剪切力。本研究支持。只要星系的动态质量恒定,大磁场的稳态条件。

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