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银河系中心附近磁场的下限为 50 微高斯。

A lower limit of 50 microgauss for the magnetic field near the Galactic Centre.

机构信息

School of Physics, Monash University, Victoria 3110, Australia.

出版信息

Nature. 2010 Jan 7;463(7277):65-7. doi: 10.1038/nature08635.

Abstract

The amplitude of the magnetic field near the Galactic Centre has been uncertain by two orders of magnitude for several decades. On a scale of approximately 100 parsecs (pc), fields of approximately 1,000 microgauss (microG; refs 1-3) have been reported, implying a magnetic energy density more than 10,000 times stronger than typical for the Galaxy. Alternatively, the assumption of pressure equilibrium between the various phases of the Galactic Centre interstellar medium (including turbulent molecular gas, the contested 'very hot' plasma, and the magnetic field) suggests fields of approximately 100 microG over approximately 400 pc size scales. Finally, assuming equipartition, fields of only approximately 6 microG have been inferred from radio observations for 400 pc scales. Here we report a compilation of previous data that reveals a downward break in the region's non-thermal radio spectrum (attributable to a transition from bremsstrahlung to synchrotron cooling of the in situ cosmic-ray electron population). We show that the spectral break requires that the Galactic Centre field be at least approximately 50 microG on 400 pc scales, lest the synchrotron-emitting electrons produce too much gamma-ray emission, given other existing constraints. Other considerations support a field of 100 microG, implying that over 10% of the Galaxy's magnetic energy is contained in only less than or approximately 0.05% of its volume.

摘要

几十年来,银河系中心附近的磁场强度一直存在两个数量级的不确定性。在大约 100 秒差距(pc)的尺度上,已经报道了大约 1000 微高斯(microG;参考文献 1-3)的磁场,这意味着磁场能量密度比银河系的典型磁场强度强 10000 多倍。或者,假设银河系中心星际介质(包括湍流分子气体、有争议的“非常热”等离子体和磁场)的各个相之间处于压力平衡状态,则暗示着大约 100 microG 的磁场存在于大约 400 pc 的大小尺度上。最后,假设能量均分,从 400 pc 尺度的射电观测中仅推断出大约 6 microG 的磁场。在这里,我们报告了以前的数据汇编,这些数据显示该区域的非热射电光谱出现了向下的转折(归因于原地宇宙射线电子种群的韧致辐射向同步加速冷却的转变)。我们表明,谱线转折要求银河系中心的磁场在 400 pc 的尺度上至少为大约 50 microG,否则,鉴于其他现有约束条件,同步发射电子会产生过多的伽马射线发射。其他考虑因素支持磁场为 100 microG,这意味着银河系的磁场能量中有超过 10%仅包含在其体积的不到或大约 0.05%中。

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