论文标题
在Tokamak中大量气体注入期间2/1撕裂模式的冷气泡形成
Cold bubble formation from 2/1 tearing mode during massive gas injection in a tokamak
论文作者
论文摘要
在许多Tokamaks中已经进行了大规模气体注入(MGI)实验,以研究破坏动力学和缓解方案。在这些实验中经常观察到的两个事件是$ M = 2,n = 1 $磁流失动力(MHD)模式的激发,以及在热淬灭之前温度分布中冷气泡结构的形成。这里$ m $是poloidal模式编号,$ n $ toroidal模式编号。然而,这些现象背后的物理机制并不完全清楚。在这项工作中,我们最近对Tokamak中MGI过程的Nimrod模拟重现了这两个事件的主要特征,这使我们能够检查并建立它们之间的因果关系。在这些模拟中,发现$ 3/1 $和$ 2/1 $的岛屿在相应的$ q = 3 $和$ q = 2 $合理的表面后,在杂质离子冷界的到来后连续形成。在杂质和等离子体之间的界面上,由于局部压力梯度增强并在气冷锋后向内移动,形成了局部薄电流板,这可能有助于形成主要的$ 2/1 $模式。在$ 2/1 $撕裂模式的增长之后,杂质渗透到$ q = 2 $表面内的核心区域会导致冷气泡温度结构的形成,并启动最终的TQ。较早在$ q = 1 $表面附近开发的亚尺寸$ 1/1 $模式并不会引起这种冷气泡的形成,但是,前面的杂质渗透的确切方式取决于$ 1/1 $模式的性质:扭结或Quasientaine或Quasi-Interterchange。
Massive gas injection (MGI) experiments have been carried out in many tokamaks to study disruption dynamics and mitigation schemes. Two events often observed in those experiments are the excitation of the $m=2, n=1$ magnetohydrodynamic (MHD) mode, and the formation of cold bubble structure in the temperature distribution before the thermal quench (TQ). Here $m$ is the poloidal mode number, $n$ the toroidal mode number. The physics mechanisms underlying those phenomena, however, have not been entirely clear. In this work, our recent NIMROD simulations of the MGI process in a tokamak have reproduced the main features of both events, which has allowed us to examine and establish the causal relation between them. In these simulations, the $3/1$ and $2/1$ islands are found to form successively after the arrival of impurity ion cold front at the corresponding $q = 3$ and $q = 2$ rational surfaces. At the interface between impurity and plasma, a local thin current sheet forms due to an enhanced local pressure gradient and moves inward following the gas cold front, this may contribute to the formation of a dominant $2/1$ mode. Following the growth of the $2/1$ tearing mode, the impurity penetration into the core region inside the $q=2$ surface gives rise to the formation of the cold bubble temperature structure and initiates the final TQ. A subdominant $1/1$ mode developed earlier near the $q=1$ surface alone does not cause such a cold bubble formation, however, the exact manner of the preceding impurity penetration depends on the nature of the $1/1$ mode: kink-tearing or quasi-interchange.