模拟电荷交换在 EAST 上引起的 NBI 损失

Zhanhong Lin, Feng Wang, Ming-Xia Xu, Chaofeng Sang, Chen Zhang, Zhengxiong Wang
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引用次数: 0

摘要

中性束注入是托卡马克广泛采用的一种关键加热工具,在产生燃烧等离子体方面发挥着至关重要的作用。然而,束离子的损失会损坏第一壁,降低加热效率,导致无法维持稳态条件。在这项工作中,利用粒子示踪代码(PTC)研究了边缘中性粒子对先进超导托卡马克实验装置(EAST)中由 NBI 产生的快速离子的影响。边缘等离子体模拟代码 SOLPS-ITER 计算了中性粒子的极性分布。模拟中考虑了 EAST 中的四条光束线:同流切向(co-tang)、同流垂直(co-perp)、逆流切向(ctr-tang)和逆流垂直(ctr-perp)。结果表明,在没有中性粒子的情况下,ctr-注入的损耗率大大高于共注入的损耗率。当考虑到中性粒子时,发现与其他三种注入配置相比,ctr-perp 注入的粒子损耗率变化很大(从 18.56% 到 25.42%)。就中性粒子引起的损耗率而言,ctr 注入超过了共注入,垂直配置超过了切向配置。此外,四种注入方式中三种不同能量(全能量、半能量、三分之一能量)的电荷交换比的差异可归因于与每种注入方式相关的极性轨迹的变化。此外,大约一半的中和快离子会直接流失到第一壁,而其余的则会重新进入大体积等离子体并重新电离。除了ctr-tang注入外,其他三次注入的再电离离子都表现出有效的束缚。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation of charge-exchange induced NBI losses on EAST
The neutral beam injection is widely adopted in tokamaks as a key heating tool, playing a crucial role in generating burning plasmas. However, the loss of beam ions can damage the first wall and reduce the heating efficiency, resulting in failure to maintain steady-state conditions. In this work, the effect of neutral particles in the edge on fast ions generated by NBI in the Experimental Advanced Superconducting Tokamak (EAST) device is studied using the particle tracer code (PTC). The poloidal distribution of neutral particles is calculated by edge plasma simulation code SOLPS-ITER. In this simulation, four beam lines in EAST are considered: co-current tangential (co-tang), co-current perpendicular (co-perp), counter-current tangential (ctr-tang) and counter-current perpendicular (ctr-perp). It is shown that, in the absence of neutral particles, the loss fraction of ctr-injection is considerably higher than that of the co-injection. When considering the neutral particles, it is found that the ctr-perp injection demonstrates a significant variation in particles loss fraction (ranging from 18.56% to 25.42%) compared to the other three injection configurations. In terms of the loss fraction induced by neutral particles, ctr-injection exceeds co-injection, and perpendicular configuration exceeds tangential configuration. Furthermore, the divergence of charge exchange ratios of three different energy (full energy, half energy, one third energy) of the four injections can be attributed to variations in the poloidal trajectories associated with each of these injections. Moreover, approximately half of fast ions which undergo neutralization directly lose to the first wall while the rest re-enters the bulk plasma and re-ionizes. Except for the ctr-tang injection, the reionization ions from the other three injections exhibit effective confinement.
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