论文标题
旋转超质量黑洞的磁层中的间隙型颗粒加速度
Gap-type Particle Acceleration in the Magnetospheres of Rotating Supermassive Black Holes
论文作者
论文摘要
在活性银河核中检测迅速变化的伽马射线发射已引起人们对磁层颗粒加速度和发射方案的新兴趣。为了探索其潜力,我们研究了旋转黑洞磁层的空表面周围稳定间隙加速的可能性。我们采用了简化的(1D)描述以及高斯定律的一般相对论表达,我们假设该间隙嵌入了辐射效率低下的积聚流的辐射场中。该模型用于得出平行电场成分的径向分布,电子和正电子电荷密度,粒子Lorentz因子以及$γ$ -Ray光子的数量密度的表达式。我们以数值为单位集成了一组方程,施加了合适的边界条件。结果表明,如果在边界处允许两种物种的电荷注入,则可以原则上存在稳定的差距解决方案。我们为全球电流和积聚率的不同选择提供了差距解决方案。当置于上下文中时,我们的结果表明,M87中可变的非常高的能量$γ$ -Ray发射可能与磁层起源兼容。
The detection of rapidly variable gamma-ray emission in active galactic nuclei has generated renewed interest in magnetospheric particle acceleration and emission scenarios. In order to explore its potential, we study the possibility of steady gap acceleration around the null surface of a rotating black hole magnetosphere. We employ a simplified (1D) description along with the general relativistic expression of Gauss's law, and we assume that the gap is embedded in the radiation field of a radiatively inefficient accretion flow. The model is used to derive expressions for the radial distribution of the parallel electric field component, the electron and positron charge density, the particle Lorentz factor, and the number density of $γ$-ray photons. We integrate the set of equations numerically, imposing suitable boundary conditions. The results show that the existence of a steady gap solution for a relative high value of the global current is in principle possible if charge injection of both species is allowed at the boundaries. We present gap solutions for different choices of the global current and the accretion rate. When put in context, our results suggest that the variable very high energy $γ$-ray emission in M87 could be compatible with a magnetospheric origin.