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The maintenance of good wall conditions and high performance operation on DIII-D over extended periods without boronization

W P West, M Groth, A W Hyatt, G L Jackson, M R Wade, C M Greenfield, P A Politzer2009年Plasma Physics and Controlled FusionIF 2.2出版社

High performance plasmas and daily reference shots (DRSs) with both L-mode and H-mode phases were used to demonstrate the maintenance of good wall conditions over ∼7000 s of plasma operation in DIII-D with no intervening boronizations or high temperature bakes during each of the 2006 and 2007 campaigns. High performance discharges with high normalized beta and confinement factor and good density control over the duration of the high-power beam injection period were very repeatable over the course of these campaigns. High performance operation was also demonstrated after a six week entry vent followed by the standard high temperature bake at 350 °C and plasma conditioning, but prior to a boronization. Over the 2006 and 2007 campaigns, the DRS database indicated little to no secular increase in impurity content. Oxygen content and nickel line emission were higher after the entry vent, but were still minor contributors to plasma contamination compared with carbon. Because DIII-D has a plasma facing surface that is >95% graphite, we take this as a demonstration that erosion of boronization films used for wall conditioning will not be a limitation to establishing long-pulse high performance discharges in the new generation of superconducting tokamaks if graphite is used as the primary plasma facing material.

日本語訳

高性能プラズマおよびLモード相とHモード相の両方を含む日常参照ショット(DRS)を用いて、2006年および2007年の各キャンペーンにおいて、ホウ素化や高温ベークを一切介在させずに、DIII-Dでの約7000秒のプラズマ運転にわたり良好な壁状態が維持されることを実証した。高い規格化ベータと閉じ込め係数を有し、かつ高パワー中性粒子ビーム入射期間を通じて密度制御が良好な高性能放電は、これらのキャンペーン期間中、非常に再現性が高かった。また、6週間の入気ベントの後、標準的な350°Cでの高温ベークとプラズマコンディショニングを行い、その後のホウ素化前においても、高性能運転が実証された。2006年および2007年のキャンペーンを通じて、DRSデータベースは不純物含有量の経年的な増加がほとんどないことを示した。酸素含有量とニッケル線 emission は入気ベント後に高かったが、それでも炭素と比較すればプラズマ汚染への寄与は小さかった。DIII-Dのプラズマ対向面は95%以上がグラファイトであるため、これは、グラファイトを主要なプラズマ対向材料として使用する場合、壁調整に用いられるホウ素化膜の侵食が、新型超伝導トカマクにおける長時間パルス高性能放電の確立に対する制限要因にはならないことを示すものであると考えられる。

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