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Survey of the H-mode power threshold and transition physics studies in ASDEX Upgrade

F. Ryter, S.K. Rathgeber, L. Barrera Orte, M. Bernert, G.D. Conway, R. Fischer, T. Happel, B. Kurzan, R.M. McDermott, A. Scarabosio2013年被引用 105Nuclear FusionIF 3出版社

An overview of the H-mode threshold power in ASDEX Upgrade which addresses the impact of the tungsten versus graphite wall, the dependences upon plasma current and density, as well as the influence of the plasma ion mass is given. Results on the H–L back transition are also presented. Dedicated L–H transition studies with electron heating at low density, which enable a complete separation of the electron and ion channels, reveal that the ion heat flux is a key parameter in the L–H transition physics mechanism through the main ion pressure gradient which is itself the main contribution to the radial electric field and the induced flow shearing at the edge. The electron channel does not play any role. The 3D magnetic field perturbations used to mitigate the edge-localized modes are found to also influence the L–H transition and to increase the power threshold. This effect is caused by a flattening of the edge pressure gradient in the presence of the 3D fields such that the L–H transitions with and without perturbations occur at the same value of the radial electric field well, but at different heating powers.

日本語訳

ASDEX UpgradeにおけるHモード閾値パワーの概要を示す。これは、タングステン壁とグラファイト壁の影響、プラズマ電流および密度への依存性、ならびにプラズマイオン質量の影響を取り扱う。H-L後方遷移に関する結果も提示する。低密度での電子加熱を用いた専用のL-H遷移研究により、電子チャネルとイオンチャネルの完全な分離が可能となり、イオン熱流束がL-H遷移物理の鍵となるパラメータであることが明らかになる。これは、主イオン圧力勾配を通じてであり、それ自体が動径電場と端部における誘起フローシアーの主な寄与である。電子チャネルは何らの役割も果たさない。端部局在モードを緩和するために用いられる3次元磁場摂動は、L-H遷移にも影響を及ぼし、閾値パワーを増大させることが見出された。この効果は、3次元磁場の存在下での端部圧力勾配の平坦化によって引き起こされ、摂動の有無によるL-H遷移は、同じ値の動径電場井戸において、異なる加熱パワーで発生する。

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