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Acceleration of the charged particles due to chaotic scattering in the combined black hole gravitational field and asymptotically uniform magnetic field

机译:黑洞引力场和渐近均匀磁场中混沌散射引起的带电粒子加速

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To test the role of large-scale magnetic fields in accretion processes, we study the dynamics of the charged test particles in the vicinity of a black hole immersed into an asymptotically uniform magnetic field. Using the Hamiltonian formalism of the charged particle dynamics, we examine chaotic scattering in the effective potential related to the black hole gravitational field combined with the uniform magnetic field. Energy interchange between the translational and oscillatory modes of the charged particle dynamics provides a mechanism for charged particle acceleration along the magnetic field lines. This energy transmutation is an attribute of the chaotic charged particle dynamics in the combined gravitational and magnetic fields only, the black hole rotation is not necessary for such charged particle acceleration. The chaotic scatter can cause a transition to the motion along the magnetic field lines with small radius of the Larmor motion or vanishing Larmor radius, when the speed of the particle translational motion is largest and it can be ultra-relativistic. We discuss the consequences of the model of ionization of test particles forming a neutral accretion disc, or heavy ions following off-equatorial circular orbits, and we explore the fate of heavy charged test particles after ionization where no kick of heavy ions is assumed and only the switch-on effect of the magnetic field is relevant. We demonstrate that acceleration and escape of the ionized particles can be efficient along the Kerr black hole symmetry axis parallel to the magnetic field lines. We show that a strong acceleration of the ionized particles to ultra-relativistic velocities is preferred in the direction close to the magnetic field lines. Therefore, the process of ionization of Keplerian discs around the Kerr black holes can serve as a model of relativistic jets.
机译:为了测试大规模磁场在吸积过程中的作用,我们研究了浸入渐近均匀磁场中的黑洞附近带电测试粒子的动力学。使用带电粒子动力学的哈密顿形式,我们研究了与黑洞引力场和均匀磁场有关的有效电位中的混沌散射。带电粒子动力学的平移和振荡模式之间的能量交换为沿磁场线的带电粒子加速提供了一种机制。这种能量trans变仅是重力和磁场组合中混沌带电粒子动力学的属性,对于这种带电粒子加速,黑洞旋转不是必需的。当粒子平移运动的速度最大并且可能是超相对论时,混沌散射会导致沿磁场线向运动过渡,而拉莫尔运动的半径较小或拉莫尔半径消失。我们讨论了形成中性吸积盘的测试粒子电离模型或赤道圆轨道之后的重离子电离模型的后果,并探讨了电离后重带电测试粒子的去向,其中假设没有重离子的反冲并且仅磁场的接通效应是相关的。我们证明,沿着平行于磁场线的克尔黑洞对称轴,电离粒子的加速和逃逸是有效的。我们表明,在靠近磁场线的方向上,最好将电离粒子加速至超相对论速度。因此,围绕Kerr黑洞的Keplerian圆盘的电离过程可以作为相对论射流的模型。

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