论文标题

QED和积聚流模型对Euler-Heisenberg黑色孔的光学外观的影响

QED and accretion flow models effect on optical appearance of Euler-Heisenberg black holes

论文作者

Zeng, Xiao-Xiong, He, Ke-Jian, Li, Guo-Ping, Liang, En-Wei, Guo, Sen

论文摘要

考虑到量子电动力学(QED)效应,我们研究了在不同的吸积流中,Euler-Heisenberg(EH)黑洞(EH)黑洞(EH)黑洞(EH)的几何形式出现,取决于BH时空结构和不同光源。更明显的磁电荷导致EH BH的阴影半径较小,而EH参数的不同值不会破坏它。相应的二维阴影图像的不同特征是针对三个光学薄的积聚流模型得出的。结果表明,在相同的参数下,静态球形吸收流程中观察到的总强度与插入球形吸积流相比,但是EH BH阴影的大小和位置并没有改变这两个吸积流,这意味着BH阴影大小取决于依赖于少量时空的范围。特别令人感兴趣的是,薄磁盘积聚模型照亮了BH,我们发现镜头环对观察到的通量的贡献小于5 \%,并且光子环小于2 \%,这表明直接发射占EH BH的光学外观。还认为,BH图像的光学外观取决于在这种情况下的吸积盘辐射位置,该磁盘可以用作M87^{*}的活性银河系核(Agn)周围的磁盘结构的探针。

Taking the quantum electrodynamics (QED) effect into account, we investigate the geometrical-optics appearance of the Euler-Heisenberg (EH) black hole (BH) under the different accretion flows context, which depends on the BH space-time structure and different sources of light. The more significant magnetic charge leads to the smaller shadow radius for the EH BH, while the different values of the EH parameter do not ruin it. Different features of the corresponding two-dimensional shadow images are derived for the three optically thin accretion flow models. It is shown that the total observed intensity in the static spherical accretion flow scenario leads than that of the infalling spherical accretion flow under same parameters, but the size and position of the EH BH shadows do not change in both of these accretions flows, implying that the BH shadow size depends on the geometric space-time and the shadows luminosities rely on the accretion flow morphology. Of particular interest is that a thin disk accretion model illuminated the BH, we found that the contribution of the lensing ring to the total observed flux is less than 5\%, and the photon ring is less than 2\%, indicating that the direct emission dominates the optical appearance of the EH BH. It is also believed that the optical appearance of the BH image depends on the accretion disk radiation position in this scenario, which can serve as a probe for the disk structure around the active galactic nucleus (AGN) of M87^{*} like.

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