星马座A*周围等离子体和电流片的耀斑

IF 5.8 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
I. Dimitropoulos, A. Nathanail, M. Petropoulou, I. Contopoulos, C. M. Fromm
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引用次数: 0

摘要

上下文。银河系中心的超大质量黑洞Sgr A*会产生重复的近红外耀斑,地面和太空仪器都能观测到。这种活动在过去已经用包含稳定喷流形成的磁阻盘模型进行了模拟。我们使用了一种不同的方法,考虑了缺乏稳定射流结构的标准和正常演化(SANE)多环模型。本研究的主要目的是确定包含电流片和高磁湍流的区域,并随后从非热粒子产生2.2 μm光曲线。这些目标需要识别包含电流片和高磁湍流的区域,并对这些区域周围区域的磁化强度进行平均。随后,应用颗粒池内拟合公式确定非热颗粒分布并获得理想的光曲线。此外,我们还研究了耀斑的性质,特别是它们在耀斑事件中的演变,以及产生的光曲线和观测到的光曲线之间的耀斑特征的相似性。利用广义相对论二维磁流体动力学模拟数据,引入热辐射,生成230 GHz光曲线。对物理变量进行了校准,以与230 GHz观测结果保持一致。我们通过分析环形电流、磁化、等离子体β、密度和无因次温度来确定电流片。我们研究了耀斑事件中电流片的演变,并计算了2.2 μm近红外波段的高能非热光曲线。我们得到了有希望的2.2 μm光曲线,其耀斑持续时间和光谱指数行为与观测结果一致。我们的发现支持了耀斑与粒子加速和非热发射之间的联系,这些粒子加速和非热发射发生在电流片等离子体链和中心黑洞上下漏斗内的圆盘边界处。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Flares from plasmoids and current sheets around Sgr A*
Context. The supermassive black hole Sgr A* at the center of our galaxy produces repeating near-infrared flares that are observed by ground- and space-based instruments. This activity has been simulated in the past with magnetically arrested disk models that include stable jet formations. We used a different approach, considering a standard and normal evolution (SANE) multi-loop model that lacks a stable jet structure.Aims. The main objective of this research is to identify regions that contain current sheets and high magnetic turbulence, and to subsequently generate a 2.2 μm light curve from nonthermal particles. These aims required the identification of areas that contain current sheets and high magnetic turbulence, and the averaging of the magnetization in the regions surrounding these areas. Subsequently, particle-in-cell fitting formulas were applied to determine the nonthermal particle distribution and to obtain the sought-after light curve. Additionally, we investigated the properties of the flares, in particular their evolution during flare events, and the similarity of flare characteristics between the generated and observed light curves.Methods. We employed 2D general relativistic magnetohydrodynamic simulation data from a SANE multi-loop model and introduced thermal radiation to generate a 230 GHz light curve. Physical variables were calibrated to align with the 230 GHz observations. We identified current sheets by analyzing toroidal currents, magnetization, plasma β, density, and dimensionless temperatures. We studied the evolution of current sheets during flare events and calculated higher-energy nonthermal light curves, focusing on the 2.2 μm near-infrared range.Results. We obtain promising 2.2 μm light curves whose flare duration and spectral index behavior align well with observations. Our findings support the association of flares with particle acceleration and nonthermal emission in current sheet plasmoid chains and at the boundary of the disk inside the funnel above and below the central black hole.
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来源期刊
Astronomy & Astrophysics
Astronomy & Astrophysics 地学天文-天文与天体物理
CiteScore
10.20
自引率
27.70%
发文量
2105
审稿时长
1-2 weeks
期刊介绍: Astronomy & Astrophysics is an international Journal that publishes papers on all aspects of astronomy and astrophysics (theoretical, observational, and instrumental) independently of the techniques used to obtain the results.
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