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Multi-scale full-orbit analysis on phase-space behavior of runaway electrons in tokamak fields with synchrotron radiation

机译:同步辐射对托卡马克场中失控电子相空间行为的多尺度全轨道分析

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摘要

In this paper, the secular full-orbit simulations of runaway electrons with synchrotron radiation in tokamak fields are carried out using a relativistic volume-preserving algorithm. Detailed phase-space behaviors of runaway electrons are investigated in different dynamical timescales spanning 11 orders. In the small timescale, i.e., the characteristic timescale imposed by Lorentz force, the severely deformed helical trajectory of energetic runaway electron is witnessed. A qualitative analysis of the neoclassical scattering, a kind of collisionless pitch-angle scattering phenomena, is provided when considering the coupling between the rotation of momentum vector and the background magnetic field. In large timescale up to 1 s, it is found that the initial condition of runaway electrons in phase space globally influences the pitch-angle scattering, the momentum evolution, and the loss-gain ratio of runaway energy evidently. However, the initial value has little impact on the synchrotron energy limit. It is also discovered that the parameters of tokamak device, such as the toroidal magnetic field, the loop voltage, the safety factor profile, and the major radius, can modify the synchrotron energy limit and the strength of neoclassical scattering. The maximum runaway energy is also proved to be lower than the synchrotron limit when the magnetic field ripple is considered. Published by AIP Publishing.
机译:在本文中,使用相对论的体积守恒算法对托卡马克场中具有同步加速器辐射的失控电子进行了全轨道仿真。在跨越11个数量级的不同动态时标中研究了失控电子的详细相空间行为。在较小的时标中,即洛伦兹力施加的特征时标,可以看到高能失控电子的螺旋形轨迹发生了严重变形。当考虑动量矢量的旋转与背景磁场之间的耦合时,对新古典散射进行了定性分析,这是一种无碰撞的俯仰角散射现象。发现在长达1 s的较大时间尺度内,相空间中失控电子的初始状态会全局性地影响螺距角散射,动量演化和失控能量的损耗比。但是,初始值对同步加速器能量极限的影响很小。还发现托卡马克装置的参数,例如环形磁场,环路电压,安全系数分布图和长半径,可以改变同步加速器的能量极限和新古典散射的强度。当考虑磁场纹波时,最大失控能量也被证明低于同步加速器极限。由AIP Publishing发布。

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