论文标题

同步加速器发射Komissarov圆环,带有磁极围绕Kerr黑色孔

Synchrotron emitting Komissarov torus with magnetic polarization around Kerr black holes

论文作者

Velásquez-Cadavid, J. M., Lora-Clavijo, Fabio D., Pimentel, Oscar M., Arrieta-Villamizar, J. A.

论文摘要

黑洞积聚磁盘中的磁场与质量积聚和能量扩增的过程有关。由于材料的磁极化引起的磁场的贡献会引起对培养基的物理特性的影响,这对来自增生盘的辐射产生了影响。因此,从观察值中,可以推断出材料的磁极化留下的“指纹”并确定时空本身的特性。作为此目的的第一步,我们使用数值模拟系统地分析了Kerr黑洞周围积聚磁盘的磁性产生的可能的可观察效应。我们发现,在同步加速器辐射功率模型下,当血浆以气压为主时,磁极化的效果可以忽略不计。然而,随着β-血压减小,对于以磁性压力为主的磁盘,发射变得更加强烈。特别是,我们发现,顺磁盘在此制度中散发出最高强度值与β-血压参数无关。相比之下,由于磁场对发射和吸收系数的依赖性,发射的通量会随着β-铂的增加而降低。此外,磁盘的形态随磁敏感性而变化:顺磁盘比磁盘磁盘更紧凑。这一事实导致磁管磁盘发出更大的通量,因为每个光子都有更光学的路径在磁盘内部行进。

Magnetic fields in black hole accretion disks are associated with processes of mass accretion and energy amplification. The contribution of the magnetic field due to the magnetic polarization of the material induces effects on the physical properties of the medium that have repercussions on the radiation coming from the accretion disks. Hence, from observations, it could be possible to infer the "fingerprint" left by the magnetic polarization of the material and establish the properties of the spacetime itself. As the first step in this purpose, we use numerical simulations to systematically analyze the possible observable effects produced by the magnetic properties of an accretion disk around a Kerr black hole. We found that under the synchrotron radiation power-law model the effects of the magnetic polarization are negligible when the plasma is gas pressure-dominated. Nevertheless, as beta-plasma decreases, the emission becomes more intense for magnetic pressure-dominated disks. In particular, we found that paramagnetic disks emit the highest intensity value independent of the beta-plasma parameter in this regime. By contrast, the emitted flux decreases with the increase of beta-plasma due to the dependence of the magnetic field on the emission and absorption coefficients. Moreover, the disk morphology changes with the magnetic susceptibility: paramagnetic disks are more compact than diamagnetic ones. This fact leads to diamagnetic disks emitting a greater flux because each photon has a more optical path to travel inside the disk.

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