论文标题
在ASDEX升级中大规模气体注入方案中失控电子产生的自洽建模
Self-consistent modeling of runaway electron generation in massive gas injection scenarios in ASDEX Upgrade
论文作者
论文摘要
我们介绍了从大规模注入(MMI)到已建立的失控电子(RE)梁的ASDEX升级中的诱导破坏的第一个成功模拟,从而覆盖了送药前淬火前淬火,热淬灭和电流淬火(CQ)。对于未来的高电流融合设备,例如ITER,通过MMI成功抑制RES对于确保血管的结构完整性至关重要。为了在计算上研究MMI,背景等离子体响应和RE生成之间的相互作用,开发了基于1.5D传输代码耦合Astra-Strahl的工具包。在存在部分电离杂质的情况下,最先进的动力学模型描述了电子失控。应用于ASDEX升级排放#33108中的Argon MMI,通过实验测量的关键等离子体参数,例如线平均电子密度的时间演变,等离子体电流衰减速率和CQ后电流,由所示的模拟良好复制。杂质离子通过新古典过程的综合作用和在$ q = 2 $理性表面内规定的其他效果的综合效应传输到中心等离子体中,以解释实验时间尺度。因此,通过强大的杂质辐射诱导热塌陷,如实验观察到的大量人群。
We present the first successful simulation of a induced disruption in ASDEX Upgrade from massive material injection (MMI) up to established runaway electron (RE) beam, thus covering pre-thermal quench, thermal quench and current quench (CQ) of the discharge. For future high-current fusion devices such as ITER, the successful suppression of REs through MMI is of critical importance to ensure the structural integrity of the vessel. To computationally study the interplay between MMI, background plasma response, and RE generation, a toolkit based on the 1.5D transport code coupling ASTRA-STRAHL is developed. Electron runaway is described by state-of-the-art reduced kinetic models in the presence of partially ionized impurities. Applied to argon MMI in ASDEX Upgrade discharge #33108, key plasma parameters measured experimentally, such as temporal evolution of the line averaged electron density, plasma current decay rate and post-CQ RE current, are well reproduced by the simulation presented. Impurity ions are transported into the central plasma by the combined effect of neoclassical processes and additional effects prescribed inside the $q = 2$ rational surface to explain experimental time scales. Thus, a thermal collapse is induced through strong impurity radiation, giving rise to a substantial RE population as observed experimentally.