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首页> 外文期刊>The Astrophysical journal >ROSSI X-RAY TIMING EXPLORER OBSERVATION OF CYGNUS X-1. III. IMPLICATIONS FOR COMPTON CORONA AND ADVECTION-DOMINATED ACCRETION FLOW MODELS
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ROSSI X-RAY TIMING EXPLORER OBSERVATION OF CYGNUS X-1. III. IMPLICATIONS FOR COMPTON CORONA AND ADVECTION-DOMINATED ACCRETION FLOW MODELS

机译:CYGNUS X-1的ROSSI X射线定时资源管理器观测。三,对康普顿冠冕和增幅主导的增生流模型的影响

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We have recently shown that a "sphere + disk" geometry Compton corona model provides a good description of Rossi X-Ray Timing Explorer (RXTE) observations of the hard/low state of Cygnus X-1. Separately, we have analyzed the temporal data provided by RXTE. In this paper we consider the impli- cations of this timing analysis for our best-fit "sphere + disk" Comptonization models. We focus our attention on the observed Fourier frequency-dependent time delays between hard and soft photons. We consider whether the observed time delays are created in the disk but are merely reprocessed by the corona, created by differences between the hard and soft photon diffusion times in coronae with extremely large radii, or are due to " propagation " of disturbances through the corona. We find that the time delays are most likely created directly within the corona, however, it is currently uncertain which specific model is the most likely explanation. Models that posit a large coronal radius (or equivalently, a large advection-dominated accretion flow region) do not fully address all the details of the observed spectrum. The Compton corona models that do address the full spectrum do not contain dynamical information. We show, however, that simple phenomenological propagation models for the observed time delays for these latter models imply extremely slow characteristic propagation speeds within the coronal region.
机译:我们最近显示,“球形+盘状”几何康普顿电晕模型很好地描述了罗西X射线定时资源管理器(RXTE)对天鹅座X-1硬/低态的观察结果。另外,我们分析了RXTE提供的时间数据。在本文中,我们考虑了最适合“球形+圆盘”康顿化模型的这种时序分析的含义。我们将注意力集中在观察到的硬和软光子之间的傅立叶频率相关的时间延迟上。我们考虑观察到的时间延迟是在磁盘中产生的,还是仅由电晕重新处理的,是由半径很大的日冕中的硬和软光子扩散时间之间的差异造成的,还是由于扰动通过电晕“传播”而产生的。我们发现时间延迟很可能直接在电晕内部产生,但是,目前尚不确定哪种特定模型是最可能的解释。冠状半径较大(或等效地,对流占主导的大吸积流区域)的模型不能完全解决观测光谱的所有细节。可以解决整个光谱问题的康普顿电晕模型不包含动态信息。但是,我们表明,对于这些后一种模型所观察到的时间延迟,简单的现象学传播模型意味着在冠状区域内极慢的特征传播速度。

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