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Modelling of runaway electron dynamics during argon-induced disruptions in ASDEX Upgrade and JET

K Insulander Björk, O Vallhagen, G Papp, C Reux, O Embreus, E Rachlew, T Fülöp, the ASDEX Upgrade Team, JET contributors, the EUROfusion MST1 Team2021年Plasma Physics and Controlled FusionIF 2.2出版社

Disruptions in tokamak plasmas may lead to the generation of runaway electrons that have the potential to damage plasma-facing components. Improved understanding of the runaway generation process requires interpretative modelling of experiments. In this work we simulate eight discharges in the ASDEX Upgrade and JET tokamaks, where argon gas was injected to trigger the disruption. We use a fluid modelling framework with the capability to model the generation of runaway electrons through the hot-tail, Dreicer and avalanche mechanisms, as well as runaway electron losses. Using experimentally based initial values of plasma current and electron temperature and density, we can reproduce the plasma current evolution using realistic assumptions about temperature evolution and assimilation of the injected argon in the plasma. The assumptions and results are similar for the modelled discharges in ASDEX Upgrade and JET. For the modelled discharges in ASDEX Upgrade, where the initial temperature was comparatively high, we had to assume that a large fraction of the hot-tail runaway electrons were lost in order to reproduce the measured current evolution.

日本語訳

トカマクプラズマにおけるディスラプションは、プラズマ対向機器に損傷を与える可能性のある逃走電子の生成につながる可能性がある。逃走電子生成過程の理解を深めるには、実験の解釈的モデリングが必要である。本研究では、アルゴンガスを注入してディスラプションを誘発したASDEX UpgradeおよびJETトカマクにおける8回の放電をシミュレーションする。我々は、ホットテール、ドライサー、アバランシェ機構による逃走電子の生成と、逃走電子の損失をモデル化できる流体モデリング枠組みを用いる。実験に基づくプラズマ電流、電子温度、密度の初期値を使用することで、温度進化とプラズマ中への注入アルゴンの取り込みに関する現実的な仮定を用いて、プラズマ電流の進化を再現できる。仮定と結果は、ASDEX UpgradeとJETのモデル化された放電で類似している。ASDEX Upgradeのモデル化された放電では、初期温度が比較的高かったため、測定された電流進化を再現するには、ホットテール逃走電子の大部分が失われると仮定する必要があった。

装置

asdex-upgrade高精度(タイトル一致)jet高精度(タイトル一致)

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JETASDEXASDEX UpgradePlasma disruptionRunaway electronArgon
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