论文标题
在非磁性灾难性变量中,测试构成作为连续体的起源。 X射线发射的光子指数
Testing Comptonization as the origin of the continuum in nonmagnetic Cataclysmic Variables. The photon index of X-ray emission
论文作者
论文摘要
〜0.3 $ - $ 15 keV能量带中的非磁性灾难变量(NMCV)的X射线光谱已由一个或几个光学薄的热等离子体组件或通过冷却流量模型来描述。我们测试了NMCV中的光谱连续体是否可以通过在源围绕源的云中显示的热电子(过渡层,(TL))的热电子来成功描述。我们使用了四个矮人Novae(u〜gem,ss〜cyg,vw〜hyi和ss〜hyi和ss〜hyi和ss〜hyi and SS〜Hyi和ss),使用了公开XMM-NEWTON EPIC-PN,CHANDRA HETG/ACIS和LETG/HRC,以及RXTE PCA和HEXTE PCA和HEXTE观察。总的来说,我们分析了18个观察结果,包括同时进行的0.4 $ -150 kev chandra/rxte ss〜cyg的频谱。我们仅使用一个热等离子体温度和一个光学深度拟合了多达两个热综合组件(XSPEC中的CompTT或CompTB模型),并为光谱连续体拟合了光谱连续体。在此框架中,两个种子光子成分大概来自TL的最内部和外部(或磁盘的最内部)。我们获得的是,热构造可以成功地描述〜0.4 $ -150 kev Energy Band中这些NMCV的光谱连续体。此外,我们提出了第一个主要的辐射转移模型,该模型解释了观察到的光谱光子指数的准构构,该模型在1.8左右,这强烈支持NMCV中的COMPTONIZER框架。
X-ray spectra of nonmagnetic cataclysmic variables (nmCVs) in the ~ 0.3$-$15 keV energy band have been described either by one or several optically thin thermal plasma components, or by cooling flow models. We tested if the spectral continuum in nmCVs could be successfully described by Comptonization of soft photons off hot electrons presented in a cloud surrounding the source [the transition layer, (TL)]. We used publicly XMM-Newton Epic-pn, Chandra HETG/ACIS and LETG/HRC, and RXTE PCA and HEXTE observations of four Dwarf Novae (U~Gem, SS~Cyg, VW~Hyi and SS~Aur) observed in the quiescence and outburst states. In total, we analyzed 18 observations, including a simultaneous 0.4$-$150 keV Chandra/RXTE spectrum of SS~Cyg in quiescence. We fitted the spectral continuum with up to two thermal Comptonization components (compTT or compTB models in XSPEC), using only one thermal plasma temperature and one optical depth. In this framework the two seed photon components are coming presumably from the innermost and outer parts of the TL (or innermost part of the disk). We obtained that the thermal Comptonization can successfully describe the spectral continuum of these nmCV in the ~ 0.4$-$150 keV energy band. Moreover, we present the first principal radiative transfer model which explains the quasi-constancy of the spectral photon index observed around 1.8, which strongly supports the Comptonization framework in nmCVs.