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Radiative boundary discharges with impurity injection and the H - L transition in ASDEX Upgrade

A Kallenbach, R Dux, H-S Bosch, K Büchl, J C Fuchs, O Gehre, G Haas, A Herrmann, W Herrmann, W Junker1996年Plasma Physics and Controlled FusionIF 2.2出版社

The influence of impurity radiation on the and transitions is investigated for highly radiative divertor discharges in the ASDEX Upgrade tokamak. The transitions between H- and L-mode depend on the net heat flow across the separatrix, , calculated from the heating power and bolometric radiation profiles. For typical radiative boundary conditions in ASDEX Upgrade, the radiation distribution is dominated by line emission in the vacuum-ultraviolet region and peaks near the separatrix. For the case of neon used as seed impurity, about 2/3 of the main chamber radiation is emitted inside, but close to the separatrix. Argon seed results in a higher fraction of core radiation, while the line emission is shifted further outside for nitrogen. The radiation-corrected threshold is not affected by gas puffing and is described by [MW, , T, amu]. The threshold power, which is typically lower by a factor of two without strong deuterium puffing, is increased by heavy gas puffing leading to . In the vicinity of the radiation-induced transition, a general alignment of H and L mode is observed with regard to global energy confinement time and edge density and temperature profiles. The transition itself exhibits a smooth evolution in time. Reduction of target plate power load down to about 10% of the total heating power is easily achieved by edge radiation in the CDH-mode for low conditions. However, this reduction is attributed mainly to radiation from inside the separatrix and is connected to relatively high values of the core . These results emphasize the importance of the development of more closed divertor concepts, allowing for higher divertor radiation levels in connection with lower core .

日本語訳

不純物放射がHモードとLモードの遷移に及ぼす影響を、ASDEX Upgradeトカマクにおける高放射ダイバータ放電について調査した。HモードとLモード間の遷移は、加熱パワーとボロメトリック放射分布から計算されるセパラトリクスを横切る正味の熱流束に依存する。ASDEX Upgradeにおける典型的な放射境界条件では、放射分布は真空紫外領域の線放射が支配的であり、セパラトリクス近傍でピークを示す。シード不純物としてネオンを用いた場合、主チャンバー放射の約2/3がセパラトリクス内部かつ近傍で放出される。アルゴンシードではコア放射の割合が高くなり、一方、窒素では線放射がさらに外側へシフトする。放射補正後の閾値はガス入射の影響を受けず、[MW, , T, amu]で記述される。閾値パワーは、強い重水素ガス入射がない場合に典型的に2倍低くなるが、重ガス入射により増加し、[MW, , T, amu]となる。放射誘起遷移の近傍では、HモードとLモードの間で、大域的閉じ込め時間および周辺密度・温度分布に関して一般的な一致が見られる。遷移自体は時間的に滑らかな発展を示す。ターゲット板へのパワー負荷は、CDHモードにおける低い条件下での周辺放射により、総加熱パワーの約10%まで容易に低減される。しかしながら、この低減は主としてセパラトリクス内部からの放射に起因し、比較的高いコア値と関連している。これらの結果は、より閉じたダイバータ概念の重要性を強調するものであり、より低いコア値と組み合わせた高いダイバータ放射レベルを可能にする。

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