论文标题
白矮人二进制AR天蝎座的X射线研究
An X-ray study for white dwarf binary AR Scorpii
论文作者
论文摘要
我们使用2016 - 2020年获取的档案数据报告了对白矮/M型星二元系统AR Scorpii的X射线排放的研究。众所周知,X射线发射由光学薄的热等离子体发射主导,其通量水平在轨道相中差异很大。 X射线发射还包含一个组件,该组件在白色矮人的旋转频率和轨道频率之间调节频率。在这项新分析中,METER获取的2020个数据表明,X射线发射正在调节自旋频率以及BEAT频率,这表明X射线发射的一部分来自白矮人的磁层。发现旋转频率的信号仅出现在特定的轨道相,而Beat信号出现在轨道相。我们分别从越来越较大的螺距角度的电子发射的同步加速器发射来解释以自旋频率和BEAT频率的解释X射线发射调节。在长期的演化中,从2016/2018的单峰结构变为2020年的双峰结构。在2016/2017年测得的观察到的X射线通量水平高于2018/2020年测得的X射线通量水平。轨道波形的血浆温度和幅度可能随时间而变化。这些结果表明,来自AR Scorpii的X射线发射会在年的时间范围内演变。这种长期进化将通过与白矮人的进攻或与伴侣恒星活动相关的系统的波动相关的超轨道调制来解释。
We report a study of the X-ray emission from the white dwarf/M-type star binary system AR Scorpii using archival data taken in 2016-2020. It has been known that the X-ray emission is dominated by the optically thin thermal plasma emission, and its flux level varies significantly over the orbital phase. The X-ray emission also contains a component that modulates with the beat frequency between the white dwarf's spin frequency and orbital frequency. In this new analysis, the 2020 data taken by NICER shows that the X-ray emission is modulating with the spin frequency as well as the beat frequency, indicating that part of the X-ray emission is coming from the white dwarf's magnetosphere. It is found that the signal of the spin frequency appears only at a specific orbital phase, while the beat signal appears over the orbital phase. We interpret the X-ray emission modulating with the spin frequency and the beat frequency as a result of the synchrotron emission from electrons with a smaller and larger pitch angle, respectively. In a long-term evolution, the beat pulse profile averaged over the orbital phase changed from a single-peak structure in 2016/2018 to a double-peak structure in 2020. The observed X-ray flux levels measured in 2016/2017 are higher than those measured in 2018/2020. The plasma temperature and amplitude of the orbital waveform might vary with time too. These results indicate that the X-ray emission from AR Scorpii evolves on a timescale of years. This long-term evolution would be explained by a super-orbital modulation related to, for example, a precession of the white dwarf, or a fluctuation of the system related to activity of the companion star.