NGC 7793 P13发射光谱的性质:超临界吸积盘风模型的检验

IF 1.3 4区 物理与天体物理 Q3 ASTRONOMY & ASTROPHYSICS Astrophysical Bulletin Pub Date : 2023-11-07 DOI:10.1134/S1990341323700086
A. Kostenkov, A. Vinokurov, K. Atapin, Y. Solovyeva
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引用次数: 0

摘要

超亮X射线源(ULX)的光谱显示出物质强烈外流的迹象。这些外流是ULX中光学和紫外线发射的重要组成部分,可以是供体恒星的恒星风,也可以是超临界吸积盘表面的光学厚外流(风)。在后一种情况下,外流预计仍与大质量恒星的恒星风相似,这使得人们可以在将观测到的光谱与非LTE扩展大气模型框架内模拟的光谱进行比较的基础上,使用相同的方法进行研究。在本文中,我们模拟了超亮X射线脉冲星NGC 7793 P13的光谱,假设其发射部分是在超临界吸积盘的风中产生的。估计质量损失率约为10^{-5}M_{\dodot})年({}^{-1})。我们考虑了该模型的积极和消极方面,并讨论了超临界盘风概念对NGC 7793 P13和另一颗著名的超亮X射线脉冲星NGC 300 ULX-1的适用性。
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The Nature of the Emission Spectrum of NGC 7793 P13: Testing the Supercritical Accretion Disk Wind Model

The optical spectra of ultraluminous X-ray sources (ULXs) show signs of powerful outflows of matter. These outflows are responsible for the formation of a significant portion of optical and ultraviolet emission in ULXs and can either be stellar winds of the donor stars or optically thick outflows (winds) from the surface of supercritical accretion disks. In the latter scenario the outflows are still expected to be similar to stellar winds of massive stars, which allows one to use the same methods for their study based on a comparison of the observed spectra with those simulated within the framework of non-LTE extended atmosphere models. In this paper, we simulate the optical spectrum of the ultraluminous X-ray pulsar NGC 7793 P13, assuming that its emission part is produced in the wind of the supercritical accretion disk. The estimated mass loss rate is about \(1.4\times 10^{-5}M_{\odot}\) yr\({}^{-1}\). We consider the positive and negative aspects of the model and also discuss the applicability of the concept of supercritical disk winds to NGC 7793 P13 and to another well-known ultraluminous X-ray pulsar, NGC 300 ULX-1.

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来源期刊
Astrophysical Bulletin
Astrophysical Bulletin 地学天文-天文与天体物理
CiteScore
2.00
自引率
33.30%
发文量
31
审稿时长
>12 weeks
期刊介绍: Astrophysical Bulletin is an international peer reviewed journal that publishes the results of original research in various areas of modern astronomy and astrophysics, including observational and theoretical astrophysics, physics of the Sun, radio astronomy, stellar astronomy, extragalactic astronomy, cosmology, and astronomy methods and instrumentation.
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