论文标题

丝状等离子体喷发以及电子的加热和加速

Filamentary plasma eruptions and the heating and acceleration of electrons

论文作者

Isliker, Heinz, Cathey, Andres, Hoelzl, Matthias, Pamela, Stanislas, Vlahos, Loukas

论文摘要

我们在非线性MHD模拟的I型局部局部模式(ELM)的非线性MHD模拟过程中介绍了电子模拟,以探索爆发性等离子体丝对动力学水平的影响。在丝状喷发期间,电子以0.5毫秒的速度量表中等加热和加速。在具有幂律形状的动能的分布中形成了一个明显的非热尾,对于某些粒子,达到了90 keV。加速度仅在平行于磁场的方向上观察到,即在逆流方向上明确偏爱,我们表明平行电场是观察到的加速度的原因。从系统中逃脱的大多数颗粒在能量的某个时候在外分离腿上以一条不同的罢工线路离开。能量分布尾部中的高能电子不受碰撞的影响,因此显示出失控电子的特征。均方根位移表明,能量空间中的运输显然是超扩散的,将加速过程解释为随机步行,我们发现能量提示的分布表现出指数尾巴,能量空间中的传输同样重要的是对流(系统性)和扩散(定型)性质。通过分析MHD模拟本身,事实证明,边缘区域中平行电场的直方图表现出幂律形状,而这种显然非高斯统计数据最终是我们在能量空间中发现的中等异常粒子转运现象的原因之一。

We present test-particle simulations of electrons during a nonlinear MHD simulation of a type-I edge localized mode (ELM) to explore the effect of an eruptive plasma filament on the kinetic level. The electrons are moderately heated and accelerated during the filamentary eruption on a fast time scale of the order of 0.5 ms. A clearly non-thermal tail is formed in the distribution of the kinetic energy that is of power-law shape and reaches 90 keV for some particles. The acceleration is exclusively observed in the direction parallel to the magnetic field, i.e. with a clear preference in counter-current direction, and we show that the parallel electric field is the cause of the observed acceleration. Most particles that escape from the system leave at one distinct strike-line in the outer divertor leg at some time during their energization. The escaping high energy electrons in the tail of the energy distribution are not affected by collisions, they thus show characteristics of runaway electrons. The mean square displacement indicates that transport in energy space clearly is super-diffusive, and interpreting the acceleration process as a random walk, we find that the distributions of energy-increments exhibit exponential tails, and transport in energy space is equally important of convective (systematic) and diffusive (stochastic) nature. By analyzing the MHD simulations per se, it turns out that the histograms of the parallel electric field in the edge region exhibit power-law shapes, and this clearly non-Gaussian statistics is ultimately one of the reasons for the moderately anomalous phenomena of particle transport that we find in energy space.

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