论文标题
ASDEX升级中氩诱导的破坏中的失控电子产生的动力学建模
Kinetic modelling of runaway electron generation in argon-induced disruptions in ASDEX Upgrade
论文作者
论文摘要
已经提出了大量的材料注入,以减轻相对论失控电子束的形成,这可能是由于Tokamak等离子体的破坏而导致的。在本文中,我们分析了在11个ASDEX升级放电中观察到的失控产生,其中使用大量气体注入触发了破坏。我们使用实验性观察的轴心等离子体条件的方案特征介绍了数值模拟,并使用对二维动量空间和零维真实空间中自洽的电场和温度演化的失控动力学的描述进行了描述。我们描述了破坏过程中电子分布函数的演变,并表明在所有模拟放电中,失控的种子产生均由热尾统治。我们在失控的高原阶段重现了当前耗散率对注射氩气数量的依赖性。我们的模拟还表明,注入的氩气高于阈值,电流淬火后的电流密度在很大程度上取决于氩密度。在实验中未观察到这种趋势,这表明0D动力学建模(例如失控种子传输)未捕获的效果也很重要。
Massive material injection has been proposed as a way to mitigate the formation of a beam of relativistic runaway electrons that may result from a disruption in tokamak plasmas. In this paper we analyse runaway generation observed in eleven ASDEX Upgrade discharges where disruption was triggered using massive gas injection. We present numerical simulations in scenarios characteristic of on-axis plasma conditions, constrained by experimental observations, using a description of the runaway dynamics with self-consistent electric field and temperature evolution in two-dimensional momentum space and zero-dimensional real space. We describe the evolution of the electron distribution function during the disruption, and show that the runaway seed generation is dominated by hot-tail in all of the simulated discharges. We reproduce the observed dependence of the current dissipation rate on the amount of injected argon during the runaway plateau phase. Our simulations also indicate that above a threshold amount of injected argon, the current density after the current quench depends strongly on the argon densities. This trend is not observed in the experiments, which suggests that effects not captured by 0D kinetic modeling -- such as runaway seed transport -- are also important.