论文标题
一个简单的磁性喷气器分析模型
A simple analytical model of magnetic jets
论文作者
论文摘要
我们提出了一个简单的磁性喷气机模型,其中根据保护定律和已发表的GRMHD喷射模拟的一些结果获得了主要物理量的径向平均概况。我们考虑了假设质量连续性方程和恒定的射流功率,将磁能通量转换为围绕旋转黑洞形成的喷气机的散装加速度,从而导致了Bernoulli方程。对于散装Lorentz因子和半径的假定轮廓,这为我们提供了沿射流的环形磁场组件的轮廓。然后,我们考虑将螺栓场分量连接到被吸积盘包围的旋转黑洞的情况。然后,我们的形式主义恢复了从旋转黑洞提取的功率的标准公式。我们发现,在旋转框架中,多型场强度占主导地位,直至大距离,这意味着喷气机应该在电流驱动的扭结模式下更稳定。然后可以使用所得的磁场曲线来计算射流同步器发射。
We propose a simple analytical jet model of magnetic jets, in which radially-averaged profiles of main physical quantities are obtained based on conservation laws and some results of published GRMHD jet simulations. We take into account conversion of the magnetic energy flux to bulk acceleration in jets formed around rotating black holes assuming the mass continuity equation and constant jet power, which leads to the Bernoulli equation. For assumed profiles of the bulk Lorentz factor and the radius, this gives us the profile of the toroidal magnetic field component along the jet. We then consider the case where the poloidal field component is connected to a rotating black hole surrounded by an accretion disc. Our formalism then recovers the standard formula for the power extracted from a rotating black hole. We find that the poloidal field strength dominates over the toroidal one in the comoving frame up to large distances, which means that jets should be more stable to current-driven kink modes. The resulting magnetic field profiles can then be used to calculate the jet synchrotron emission.