论文标题

在碰撞的风二进制CYG OB2#8A中搜索非热X射线排放

Search for non-thermal X-ray emission in the colliding wind binary Cyg OB2 #8A

论文作者

Mossoux, E., Pittard, J. M., Rauw, G., Nazé, Y.

论文摘要

CYG OB2#8A是一种巨大的O型二元,显示出强大的非热无线电发射。由于这种二进制的紧凑性,预计非热X射线光子的发射可以通过逆康普顿散射。我们首先使用新的光谱修改了CYG OB2#8A的轨道溶液。然后,我们减少并分析了用XMM-Newton,Swift,Integraled和Nustar获得的X射线光谱。对XMM-Newton和Swift数据的分析使我们能够更好地表征恒星风的X射线发射,并在10 keV以下的能量下的X射线发射。我们确认Cyg OB2#8A沿轨道的宽带光曲线的变化,这是第一次观察0.8阶段周围的最大发射。 X射线与CYG OB2#8A的降压通量的最小比率远高于单个O型恒星的预期水平,这表明在Periastron通过期间,碰撞风区不会破坏。对全套公开积分观测值的分析使我们能够在20至200 KeV之间对CYG OB2区域的非热X射线通量的上限进行完善。两个Nustar观测值(0.028和0.085阶段)使我们能够研究最高30 keV的CYG OB2#8A频谱。这些数据没有提供非热X射线存在的证据,而是对推定的非热成分的通量产生更严格的约束。最后,我们计算了一个新的专用模型,即风力冲击区域中产生的各向异性逆康普顿发射。理论非热发射似乎与观察限制兼容,并且从这些模型中计算出的动力学光度与在10 keV以下观察到的未吸附的通量非常吻合。

Cyg OB2 #8a is a massive O-type binary displaying strong non-thermal radio emission. Owing to the compactness of this binary, emission of non-thermal X-ray photons via inverse Compton scattering is expected. We first revised the orbital solution for Cyg OB2 #8a using new optical spectra. We then reduced and analysed X-ray spectra obtained with XMM-Newton, Swift, INTEGRAL, and NuSTAR. The analysis of the XMM-Newton and Swift data allows us to better characterise the X-ray emission from the stellar winds and colliding winds region at energies below 10 keV. We confirm the variation of the broad-band light curve of Cyg OB2 #8a along the orbit with, for the first time, the observation of the maximum emission around phase 0.8. The minimum ratio of the X-ray to bolometric flux of Cyg OB2 #8a remains well above the level expected for single O-type stars, indicating that the colliding wind region is not disrupted during the periastron passage. The analysis of the full set of publicly available INTEGRAL observations allows us to refine the upper limit on the non-thermal X-ray flux of the Cyg OB2 region between 20 and 200 keV. Two NuSTAR observations (phases 0.028 and 0.085) allow us to study the Cyg OB2 #8a spectrum up to 30 keV. These data do not provide evidence of the presence of non-thermal X-rays, but bring more stringent constraints on the flux of a putative non-thermal component. Finally, we computed, thanks to a new dedicated model, the anisotropic inverse Compton emission generated in the wind shock region. The theoretical non-thermal emission appears to be compatible with observational limits and the kinetic luminosity computed from these models is in good agreement with the unabsorbed flux observed below 10 keV.

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