论文标题
Tokamak刮擦层等离子体中电子动力学效应的缩放定律
Scaling laws for electron kinetic effects in tokamak scrape-off layer plasmas
论文作者
论文摘要
由于温度梯度,Tokamak边缘(刮擦层)等离子体可以在与磁场平行的方向上表现出非本地运输。这种效果及其后果在一系列条件下在平衡中探索了,从鞘限制到脱离,使用1D动力学电子代码溶胶套件,在这里对电子进行了动力学处理,并将其与自一致的流体模型进行比较。观察到高达50%的动力学热通量(与Spitzer Harm相比)的线平均抑制作用,与鞘热传输系数的增强相反,与高达98%的增强相反,$γ_E$。提出了两种效果的基本溶胶参数的简单缩放定律。通过将这些量表作为对流体模型的校正,我们发现与目标电子温度的动力学模型有很好的一致性。 发现$γ_E$中最强的动力学效应是在低中间碰撞的情况下观察到的,并且在上游密度和温度增加时倾向于增加。另一方面,发现热通量抑制会随着上游碰撞降低而单调增加。这些条件模拟了与当前和将来的tokamaks有关的碰撞。
Tokamak edge (scrape-off layer) plasmas can exhibit non-local transport in the direction parallel to the magnetic field due to steep temperature gradients. This effect along with its consequences has been explored at equilibrium for a range of conditions, from sheath-limited to detached, using the 1D kinetic electron code SOL-KiT, where the electrons are treated kinetically and compared to a self-consistent fluid model. Line-averaged suppression of the kinetic heat flux (compared to Spitzer-Harm) of up to 50% is observed, contrasting with up to 98% enhancement of the sheath heat transmission coefficient, $γ_e$. Simple scaling laws in terms of basic SOL parameters for both effects are presented. By implementing these scalings as corrections to the fluid model, we find good agreement with the kinetic model for target electron temperatures. It is found that the strongest kinetic effects in $γ_e$ are observed at low-intermediate collisionalities, and tend to increase at increasing upstream densities and temperatures. On the other hand, the heat flux suppression is found to increase monotonically as upstream collisionality decreases. The conditions simulated encompass collisionalities relevant to current and future tokamaks.