论文标题

热核X射线的研究在积聚毫秒的Pulsar Maxi J1816-195与Nustar和Nicer的研究中

The study of thermonuclear X-ray bursts in accreting millisecond pulsar MAXI J1816-195 with NuSTAR and NICER

论文作者

Mandal, Manoj, Pal, Sabyasachi, Chauhan, Jaiverdhan, Lohfink, Anne, Bharali, Priya

论文摘要

毫秒的脉冲星Maxi J1816-195最近在2022年5月在Maxi爆发中发现。我们使用NUSTAR和更好的观察结果的数据研究了脉冲星的不同特性。中子恒星表面上的积聚材料的不稳定燃烧会诱导热核(I型)爆发。 Maxi J1816-195在其爆发期间发现了几种热核突发。我们使用Nustar和更好的观察结果研究了爆发曲线的演变。在Nustar观察期间,从源头总共检测到四次爆发。每个爆发的持续时间约为$ \ sim $ 30 s,峰值与持续计数率的比率为$ \ sim $ 26,如Nustar数据所示。突发轮廓是使用急剧线性上升和指数衰减函数对突发时正时参数进行建模的。爆发曲线在较低的能量下显示出相对较长的尾巴。爆发时期的宽带时间分辨光谱通过吸收的黑体和非热成分的组合成功地建模,以解释持续的发射。从我们的建模结果来看,我们能够估计中子星的黑体的最大明显发射区域为$ \ sim $ \ sim $ 12.5 km,在爆发的峰值和对象的最大距离为8.7 kpc。我们对质量积聚率和α因子因子的发现表明,在爆发期间,通过热CNO循环燃烧氢。

The millisecond pulsar MAXI J1816-195 was recently discovered in an outburst by MAXI in 2022 May. We study different properties of the pulsar using data from NuSTAR and NICER observations. The unstable burning of accreted material on the surface of neutron stars induces thermonuclear (Type-I) bursts. Several such thermonuclear bursts have been detected by MAXI J1816-195 during its outburst. We investigate the evolution of the burst profile with flux and energy using NuSTAR and NICER observations. During the NuSTAR observation, a total of four bursts were detected from the source. The duration of each burst is around $\sim$ 30 s and the ratio of peak to persistent count rate is $\sim$ 26 as seen from the NuSTAR data. The burst profiles are modelled using a sharp linear rise and exponential decay function to determine the burst timing parameters. The burst profiles show a relatively long tail at lower energies. The broadband time-resolved spectra during the burst periods are successfully modelled with a combination of an absorbed blackbody along with a non-thermal component to account for the persistent emission. From our modelling results, we are able to estimate the maximum apparent emitting area of the blackbody of the neutron star to be $\sim$12.5 km during the peak of the outburst and the maximum distance to the object to be 8.7 kpc. Our findings for the mass accretion rate and the alpha factor indicate the stable burning of hydrogen via a hot CNO cycle during the bursts.

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