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Simultaneous Magnetic Polar Cap Heating during a Flaring Episode from the Magnetar 1RXS J170849.0-400910

机译:来自磁铁1RXS J170849.0-400910的喇叭形情节期间的同时磁极盖加热

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During a pointed 2018 NuSTAR observation, we detected a flare with a 2.2 hr duration from the magnetar 1RXS J170849.0-400910. The flare, which rose in similar to 25 s to a maximum flux 6 times larger than the persistent emission, is highly pulsed with an rms pulsed fraction of 53%. The pulse profile shape consists of two peaks separated by half a rotational cycle, with a peak flux ratio of similar to 2. The flare spectrum is thermal with an average temperature of 2.1 keV. Phase-resolved spectroscopy shows that the two peaks possess the same temperature, but differ in size. These observational results, along with simple light curve modeling, indicate that two identical antipodal spots, likely the magnetic poles, are heated simultaneously at the onset of the flare and for its full duration. Hence, the origin of the flare has to be connected to the global dipolar structure of the magnetar. This might best be achieved externally, via twists to closed magnetospheric dipolar field lines seeding bombardment of polar footpoint locales with energetic pairs. Approximately 1.86 hr following the onset of the flare, a short burst with its own 3 minutes thermal tail occurred. The burst tail is also pulsating at the spin period of the source and phase-aligned with the flare profile, implying an intimate connection between the two phenomena. The burst may have been caused by a magnetic reconnection event in the same twisted dipolar field lines anchored to the surface hot spots, with subsequent return currents supplying extra heat to these polar caps.
机译:在尖头2018年的Nustar观察期间,我们检测到从磁场1RXS J170849.0-400910的2.2小时持续时间的耀斑。耀斑与25秒相似的火炬比持续发射的最大助焊剂大于持续发射的6倍,具有53%的凸脉冲分数的高度脉冲。脉冲型材形状由两个旋转循环分开的两个峰组成,峰值磁通比类似于2。闪光光谱是热的,平均温度为2.1keV。相位分辨光谱表明,两个峰具有相同的温度,但大小不同。这些观察结果以及简单的光曲线建模,表明两个相同的抗双向斑点,可能是磁极,在闪光的开始和完全持续时间内同时加热。因此,FLARE的起源必须连接到磁场的全球偶极结构。这可能最好通过曲折到闭合的磁散偶极场线播种极性成对的极性足球场击打轰击。在闪光发作后大约1.86小时,发生了一个短暂的爆裂,其3分钟发生热尾。突发尾部也在源的旋转周期下脉动,并且与喇叭喇叭分布相位对齐,这意味着两种现象之间的紧密连接。突发可能是由锚定到表面热点的相同扭曲的双极场线中的磁性重新连接事件引起的,随后的返回电流向这些极帽提供额外的热量。

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