论文标题
黑洞X射线二进制GX 339-4的颜色和图案
Colors and patterns of black hole X-ray binary GX 339-4
论文作者
论文摘要
黑洞X射线二进制文件显示出光学/近红外范围内非热发射的迹象。我们在2002---2011时期分析了GX339 $ -4的光学/近红外智能数据。使用软状态数据,我们估计了降低了积聚磁盘的来源和特征色温的星际灭绝。我们表明,常规爆发的各种光谱状态在颜色标志图上占据了相似的区域,尽管观察到的光曲线形态存在很大差异,但状态之间的过渡沿着相同的轨道进行。我们确定爆发的衰落阶段的难以抚摸和软性状态过渡的典型持续时间分别为一个,两周和四个星期。我们发现,在早期阶段,失败的爆发不容易与普通爆发区分开,但是如果来源以$ v $ band的速度达到16 mag,它将转移到软状态。通过减去积聚磁盘的贡献,我们获得了非热成分的光谱,这些光谱在硬状态和软状态之间的过渡期间具有恒定,几乎平坦的形状。与在光学和近红外波长处看到的缓慢发展的非热成分相反,中红外光谱在短时标准上有很大的变化,有时显示出突出的过量,截止$ 10^{14} $ Hz。我们表明,可以使用与射流,热流和辐照吸积盘相对应的三个组件对无线电光谱进行建模。
Black hole X-ray binaries show signs of non-thermal emission in the optical/near-infrared range. We analyze the optical/near-infrared SMARTS data on GX339$-$4 over the 2002--2011 period. Using the soft state data, we estimate the interstellar extinction towards the source and characteristic color temperatures of the accretion disk. We show that various spectral states of regular outbursts occupy similar regions on the color-magnitude diagrams, and that transitions between the states proceed along the same tracks despite substantial differences in the observed light curves morphology. We determine the typical duration of the hard-to-soft and soft-to-hard state transitions and the hard state at the decaying stage of the outburst to be one, two and four weeks, respectively. We find that the failed outbursts cannot be easily distinguished from the regular ones at their early stages, but if the source reaches 16 mag in $V$-band, it will transit to the soft state. By subtracting the contribution of the accretion disk, we obtain the spectra of the non-thermal component, which have constant, nearly flat shape during the transitions between the hard and soft states. In contrast to the slowly evolving non-thermal component seen at optical and near-infrared wavelengths, the mid-infrared spectrum is strongly variable on short timescales and sometimes shows a prominent excess with a cutoff below $10^{14}$ Hz. We show that the radio to optical spectrum can be modeled using three components corresponding to the jet, hot flow and irradiated accretion disk.