论文标题

各向同性湍流中相对论带电的颗粒和田间线的扩散:ii。分析模型

Diffusion of relativistic charged particles and field lines in isotropic turbulence: II. Analytical models

论文作者

Kuhlen, Marco, Phan, Vo Hong Minh, Mertsch, Philipp

论文摘要

在小型,湍流的磁场存在下,高能颗粒的运输是天体物理学的长期问题。垂直于大规模磁场的传输的分析理论在刚性上与数值模拟不同意,而粒子的gyroradii略小于湍流的相关长度。同时,将数值模拟扩展到较低的刚性已被证明在计算上是过时的。我们基于(1)沿场线的初始粒子传输,(2)磁场线的传输和(3)最终从野外线向粒子的反相关。平行于大规模场的运输受俯仰角散射的控制,因此比逆向角度扩散系数大,粒子在平行方向上空间扩散。我们的结果表明,当粒子以湍流的几个相关长度向垂直方向移动时,垂直扩散发生。我们通过以前所未有的低刚度运行大量的测试粒子模拟来测试分析理论,从而广泛使用图形处理单元(GPU)。我们的数值结果表现出非标准的刚度依赖性,对于中间刚性的垂直扩散系数。在最低的刚性下,恢复了标准的刚度依赖性。我们的分析模型可以很好地再现模拟扩散系数。我们已将非标准的刚度依赖性追溯到现场线传输中的次延伸阶段。我们的研究证实了我们对宇宙射线从银河系光环中逃脱及其刚性依赖性的理解。 [简略]

The transport of high-energy particles in the presence of small-scale, turbulent magnetic fields is a long-standing issue in astrophysics. Analytical theories on transport perpendicular to the large-scale magnetic field disagree with numerical simulations at rigidities where the particles' gyroradii are slightly smaller than the correlation length of turbulence. At the same time, extending the numerical simulations to lower rigidities has proven computationally prohibitive. We present an analytical model for the perpendicular transport, based on (1) initial particle transport along field lines, (2) the transport of field lines and (3) the eventual decorrelation of particles from field lines. Transport parallel to the large-scale field is governed by pitch-angle scattering and so for times larger than the inverse pitch-angle diffusion coefficient, particles spatially diffuse in the parallel direction. Our results suggest that perpendicular diffusion occurs when particles have displaced in the perpendicular direction by a few correlation lengths of turbulence. We have tested the analytical theory by running a large suite of test particle simulations at unprecedentedly low rigidities, making extensive use of graphical processing units (GPUs). Our numerical results exhibit a non-standard rigidity-dependence for the perpendicular diffusion coefficient at intermediate rigidities. At the lowest rigidities, the standard rigidity-dependence is recovered. The simulated diffusion coefficients are nicely reproduced by our analytical model. We have traced the non-standard rigidity-dependence to a subdiffusive phase in the field line transport. Our study confirms our understanding of the escape of cosmic rays from the Galactic halo and its rigidity-dependence. [abridged]

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