论文标题

非热电子辐射的影响对射手座A*的地平线尺度图像结构的影响*

Impact of the nonthermal electron radiation effects on the horizon scale image structure of Sagittarius A*

论文作者

Zhao, Shan-Shan, Huang, Lei, Lu, Rusen, Shen, Zhiqiang

论文摘要

事件地平线望远镜(EHT),带有$ \ sim $ 20 $μ$作为高角度分辨率,最近解决了银河系中的Suppermassive黑洞的毫米图像,Sagittarius A*。这打开了一个新的窗口来研究地平线尺度上的等离子体。积分磁盘可能包含一小部分非热电子,它们的排放应有助于观察到的图像。我们研究此类贡献是否足以通过当前和将来的观察能力引起可检测到的结构差异。我们在半分析积聚磁盘中引入非热电子,该磁盘考虑了粘度领先的加热过程,并采用了热分布和幂律尾部的持续混合电子能量分布。我们生成黑洞图像并将结构特征作为新月参数提取。我们发现非热电子辐射的存在使新月形更明亮,稍大,中等厚,更对称。当连接Lorentz因子$γ_C= 65 $的非热线度时,这相当于占$ \ sim1.5 $%总数的非热电子电子时,非热效果会导致$ \ sim2 $%$%$%$%的大小在230 GHz。与其他物理因素引起的结构变化相比,包括系统和观察者之间的倾斜度,黑洞自旋和星际介质散射效应,我们发现,尽管非热电子辐射在230 GHz时扮演最不重要的作用,但在345 GHz时,它变得越来越重要。

The Event Horizon Telescope (EHT), with $\sim$20 $μ$as high angular resolution, recently resolved the millimeter image of the suppermassive black hole in the Galaxy, Sagittarius A*. This opens a new window to study the plasma on horizon scales. The accreting disk probably contains a small fraction of nonthermal electrons and their emissions should contribute to the observed image. We study if such contributions are sufficient to cause structural differences detectable by current and future observational capabilities. We introduce nonthermal electrons in a semi-analytical accretion disk, which considers viscosity-leading heating processes, and adopt a continued hybrid electron energy distribution of thermal distribution and power-law tail. We generate the black hole images and extract the structural features as crescent parameters. We find the existence of nonthermal electron radiation makes the crescent much brighter, slightly larger, moderately thicker, and much more symmetric. When the nonthermal connecting Lorentz factor $γ_c=65$, which is equivalent to the nonthermal electrons accounting for $\sim1.5$% of the totals, nonthermal effects cause $\sim2$% size difference at 230 GHz. Comparing with the structural changes caused by other physical factors, including inclination between the system and the observer, black hole spin, and interstellar medium scattering effects, we find that although nonthermal electron radiation takes the most unimportant role at 230 GHz, it becomes more significant at 345 GHz.

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