论文标题
SXP 15.6爆发的X射线视图:中子恒星的二进制轨道和磁场的约束
An X-ray view of the 2021 outburst of SXP 15.6: constraints on the binary orbit and magnetic field of the Neutron Star
论文作者
论文摘要
我们对位于2021年爆发期间基于Nustar,Noter和Swift观测的小麦哲伦云中的BE X射线二元脉冲星SXP 15.6进行了X射线数据的光谱和时间分析。我们首次基于同时的nustar和更好的观察到系统的宽带X射线光谱。此外,我们使用监视数据来研究爆发过程中系统的光谱和时间特性。比较2021年爆发与档案数据的比较显示出一致的可变性模式,在与系统的轨道周期相似的时间间隔内发生多个峰(〜36 d)。我们的频谱分析表明,大多数能量在10 KEV以上的高能量下释放,而我们发现光谱中没有回旋子吸收线。对爆发过程中光谱演化的分析,我们发现光谱是较柔和的武器,这反过来揭示了该系统可能处于形成积聚柱的超临界状态中。这对系统的磁场的上限为7 $ \ times $ 10 $^{11} $G。中子星(NS)在爆发期间的自旋进化与具有低磁场的NS一致($ \ sim {5} \ sim {5} \ sim {5} \ times $ 10 $^{11} $ g),同时又有一个模型和模型。我们发现轨道的偏心率为〜0.3。我们对磁场的估计与宽带X射线光谱中缺乏电子回旋共振散射特征一致。
We conducted a spectral and temporal analysis of X-ray data from the Be X-ray binary pulsar SXP 15.6 located in the Small Magellanic Cloud based on NuSTAR, NICER and Swift observations during the 2021 outburst. We present for the first time the broadband X-ray spectra of the system based on simultaneous NuSTAR and NICER observations. Moreover we use monitoring data to study the spectral and temporal properties of the system during the outburst. Comparison of the evolution of the 2021 outburst with archival data reveals a consistent pattern of variability with multiple peaks occurring at time intervals similar to the orbital period of the system (~36 d). Our spectral analysis indicates that most of the energy is released at high energies above 10 keV while we found no cyclotron absorption line in the spectrum. Analysis of the spectral evolution during the outburst, we find that the spectrum is softer-when-brighter, which in turn reveals that the system is probably in the super-critical regime where the accretion column is formed. This places an upper limit to the magnetic field of the system of the order of 7$\times$10$^{11}$ G. The spin-evolution of the neutron star (NS) during the outburst is consistent with an NS with a low magnetic field ($\sim{5}\times$10$^{11}$ G), while there is evident orbital modulation which we modelled and derived the orbital parameters. We found the orbit to have a moderate eccentricity of ~0.3. Our estimates of the magnetic field are consistent with the lack of an electron cyclotron resonance scattering feature in the broadband X-ray spectrum.