Rezzolla-Zhidenko时空下广义相对论磁流体力学模拟中的黑洞吸积和辐射变异性

IF 5.8 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
Kotaro Moriyama, Alejandro Cruz-Osorio, Yosuke Mizuno, Indu K. Dihingia, Akhil Uniyal
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引用次数: 0

摘要

事件视界望远镜(EHT)揭示了位于银河系中心的超大质量黑洞人马座A* (Sgr A*)的视界尺度辐射特性,通过将观测结果与理论模型进行比较,为检验引力理论提供了一个新的平台。关键的下一步是通过分析EHT数据中观测到的时间变异性以及广义相对论磁流体力学(GRMHD)模拟来研究黑洞附近吸积流和时空结构的本质。我们利用基于Rezzolla-Zhidenko参数化时空的二维GRMHD模拟,探索了偏离广义相对论的球对称黑洞时空中的吸积流动动力学。这项研究标志着第一次系统地研究了非kerr GRMHD模拟得出的光曲线的变异性振幅如何依赖于与史瓦西时空的偏差。偏差参数符合弱引力场和Sgr A*黑洞阴影大小的约束。我们发现吸积流的动力学系统地依赖于这些参数。在具有较深引力势的时空中,流体速度和阿尔夫海姆速度相对于史瓦西度规持续减小,表明动力学行为较弱。我们还研究了时空偏差对辐射特性的影响,利用广义相对论辐射传输模拟计算230 GHz下的亮度波动,与EHT观测结果一致。与史瓦西度规相比,这些波动的幅度显示出对偏差参数的系统依赖,随着引力势的加深而减小。这些特征是通过一个理论上预测的度量来验证的,海沃德度量是一个描述非奇异黑洞的模型。这一特征预计将在更全面的模拟中产生类似的效果,包括未来更现实的吸积盘模型和电子冷却,可能有助于区分解释Sgr A*可变性的黑洞解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Black hole accretion and radiation variability in general relativistic magnetohydrodynamic simulations with Rezzolla–Zhidenko spacetime
The Event Horizon Telescope (EHT) has unveiled the horizon-scale radiation properties of Sagittarius A* (Sgr A*), the supermassive black hole at the center of our galaxy, providing a novel platform for testing gravitational theories by comparing observations with theoretical models. A key next step is to investigate the nature of accretion flows and spacetime structures near black holes by analyzing the time variability observed in EHT data alongside general relativistic magnetohydrodynamic (GRMHD) simulations. We explored the dynamics of accretion flows in spherically symmetric black hole spacetimes with deviations from general relativity utilizing two dimensional GRMHD simulations based on the Rezzolla–Zhidenko parameterized spacetime. This study marks the first systematic investigation into how variability amplitudes in light curves, derived from non-Kerr GRMHD simulations, depend on deviations from the Schwarzschild spacetime. The deviation parameters are consistent with the constraints from weak gravitational fields and the size of Sgr A*’s black hole shadow. We find that the dynamics of accretion flows systematically depend on these parameters. In spacetimes with a deeper gravitational potential, fluid and Alfvén velocities consistently decrease relative to the Schwarzschild metric, indicating weaker dynamical behavior. We also examined the influence of spacetime deviations on radiation properties by computing luminosity fluctuations at 230 GHz using general relativistic radiative transfer simulations, in line with EHT observations. The amplitude of these fluctuations exhibits a systematic dependence on the deviation parameters, decreasing for deeper gravitational potentials compared to the Schwarzschild metric. These features are validated using one of the theoretically predicted metrics, the Hayward metric, a model that describes nonsingular black holes. This characteristic is expected to have similar effects in more comprehensive simulations that include more realistic accretion disk models and electron cooling in the future, potentially aiding in distinguishing black hole solutions that explain the variability of Sgr A*.
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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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