氘 SPI 进入 JET H 模式等离子体的三维 MHD 解释性建模

Mengdi Kong, E. Nardon, Matthias Hoelzl, Daniele Bonfiglio, D. Hu, Sang Jun Lee, Roman Samulyak, U. Sheikh, S. Silburn, J. Artola, A. Boboc, G. Bodner, Pedro Carvalho, Ephrem Delabie, Josep Maria Fontdecaba Climent, Sergei Gerasimov, T. Hender, Stefan Jachmich, Domagoj Kos, K. Lawson, Stanislas Pamela, C. Sommariva, Ž. Štancar, B. Stein-Lubrano, Hongjuan Sun, Ryan Sweeney, G. Szepesi
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引用次数: 1

摘要

通过使用 JOREK 代码进行三维非线性 MHD 建模,研究了纯氘(D2)碎丸注入(SPI)到 3MA/7MJ JET H 模式等离子体的热淬前(pre-TQ)动力学。解释性建模捕捉了测量密度和辐射功率的整体演变。模拟还确定了烧蚀等离子体向托卡马克低场侧(LFS)漂移的重要性,以及 D2 SPI 实验中碎片穿透、同化、辐射冷却和 MHD 活动的背景等离子体中杂质的重要性。研究发现,在所考虑的 JET D2 SPI 放电中,等离子体漂移会导致中心线积分密度降低约 70%(与没有漂移的模拟相比)。在 SPI 之前就已存在的杂质以及与 SPI 相关的可能杂质涌入所产生的杂质在所考虑的放电中占据了主要辐射。利用来自 JOREK 模拟的输入,使用基于拉格朗日粒子的弹丸代码 PELOTON 进行建模,再现了快速相机观测到的 SPI 碎片在大半径方向上的偏差。这证实了火箭效应和质点漂移在所考虑的放电中的作用,并加强了 JOREK 建模的有效性。质点漂移导致的有限堆芯密度上升以及杂质(取决于其种类和浓度)的强烈辐射冷却和 MHD 活动可能会限制 LFS D2 SPI 在避免电子失控方面的有效性,值得在设计热核实验堆干扰缓解系统时加以考虑。
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Interpretative 3D MHD modelling of deuterium SPI into a JET H-mode plasma
The pre-thermal quench (pre-TQ) dynamics of a pure deuterium (D2) shattered pellet injection (SPI) into a 3MA/7MJ JET H-mode plasma is studied via 3D non-linear MHD modelling with the JOREK code. The interpretative modelling captures the overall evolution of the measured density and radiated power. The simulations also identify the importance of the drifts of ablation plasmoids towards the tokamak low field side (LFS) and the impurities in the background plasma in fragment penetration, assimilation, radiative cooling and MHD activity in D2 SPI experiments. It is found that plasmoid drifts lead to an about 70% reduction of the central line-integrated density (compared to a simulation without drifts) in the JET D2 SPI discharge considered. Impurities that pre-exist before the SPI as well as those from possible impurity influxes related to the SPI are shown to dominate the radiation in the considered discharge. With inputs from JOREK simulations, modelling with the Lagrangian particle-based pellet code PELOTON reproduces the deviation of the SPI fragments in the direction of the major radius as observed by the fast camera. This confirms the role of rocket effects and plasmoid drifts in the considered discharge and reinforces the validity of the JOREK modelling. The limited core density rise due to plasmoid drifts and the strong radiative cooling and MHD activity with impurities (depending on their species and concentration) could limit the effectiveness of LFS D2 SPI in runaway electron avoidance and are worth considering in the design of the ITER disruption mitigation system.
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