论文标题

ASDEX升级中主离子压力和痕量钨传输的通量驱动的集成建模

Flux-driven integrated modelling of main ion pressure and trace tungsten transport in ASDEX Upgrade

论文作者

Linder, O., Citrin, J., Hogeweij, G. M. D., Angioni, C., Bourdelle, C., Casson, F. J., Fable, E., Ho, A., Koechl, F., Sertoli, M., Team, the EUROfusion MST1, Team, the ASDEX Upgrade

论文摘要

Tokamak核心等离子体中新古典和湍流的重型杂质转运由主离子温度,密度和环形旋转曲线确定。因此,为了理解和防止W积累的实验行为,在多个限制时间内,主离子热和颗粒传输的通量驱动的综合建模是一个重要的先决条件。在ASDEX升级H模式排放中,QuasilIrinear陀螺码Qualikiz Quyrikiz已被成功预测了集成建模套件Jetto内的湍流中占主导地位的核心动力学轮廓。新古典作用由NCLASS计算;辅助热和颗粒沉积剖面由于NBI和ECRH引起的先前分析所规定的ECRH。湍流和新古典的贡献不足以解释$ q = 1 $表面内的主离子热和颗粒传输,因此需要开处方进一步的运输系数以模仿MHD活动对中央传输的影响。在$ρ_\ mathrm {tor} = 0.85 $处的模拟边界处的电子温度比在显着超过统一时不稳定ETG模式,使离子尺度模式稳定下来。对使用高斯工艺回归技术进行实验测量的仔细分析以探索合理的不确定性。在以下痕量W杂质转运模拟中,还使用NEO进行的,仅考虑到多背性不对称的新古典转运,就不足以建立空心的中央W密度曲线。仅当假设饱和$(m,n)=(1,1)$ MHD模式在重型杂质传输上的直接影响时,才发现了这些条件的再现。

Neoclassical and turbulent heavy impurity transport in tokamak core plasmas are determined by main ion temperature, density and toroidal rotation profiles. Thus, in order to understand and prevent experimental behaviour of W accumulation, flux-driven integrated modelling of main ion heat and particle transport over multiple confinement times is a vital prerequisite. For the first time, the quasilinear gyrokinetic code QuaLiKiz has been applied for successful predictions of core kinetic profiles in an ASDEX Upgrade H-mode discharge in the turbulence dominated region within the integrated modelling suite JETTO. Neoclassical contributions are calculated by NCLASS; auxiliary heat and particle deposition profiles due to NBI and ECRH prescribed from previous analysis with TRANSP. Turbulent and neoclassical contributions are insufficient in explaining main ion heat and particle transport inside the $q=1$ surface, necessitating the prescription of further transport coefficients to mimic the impact of MHD activity on central transport. The ion to electron temperature ratio at the simulation boundary at $ρ_\mathrm{tor} = 0.85$ stabilizes ion scale modes while destabilizing ETG modes when significantly exceeding unity. Careful analysis of experimental measurements using Gaussian process regression techniques is carried out to explore reasonable uncertainties. In following trace W impurity transport simulations performed with additionally NEO, neoclassical transport under consideration of poloidal asymmetries alone is found to be insufficient to establish hollow central W density profiles. Reproduction of these conditions measured experimentally is found possible only when assuming the direct impact of a saturated $(m,n)=(1,1)$ MHD mode on heavy impurity transport.

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