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Innovative diagnostics for ITER physics addressed in JET

A Murari, T Edlington, A Alfier, A Alonso, Y Andrew, G Arnoux, M Beurskens, P Coad, C Crombe, E Gauthier2008年Plasma Physics and Controlled FusionIF 2.2出版社

In recent years, JET diagnostic capability has been significantly improved to widen the range of physical phenomena that can be studied and thus contribute to the understanding of some ITER relevant issues. The most significant results reported in this paper refer to the plasma wall interactions, the interplay between core and edge physics and fast particles. A synergy between new infrared cameras, visible cameras and spectroscopy diagnostics has allowed investigating a series of new aspects of the plasma wall interactions. The power loads on the plasma facing components of JET main chambers have been assessed at steady state and during transient events like ELMs and disruptions. Evidence of filaments in the edge region of the plasma has been collected with a new fast visible camera and high resolution Thomson scattering. The physics of detached plasmas and some new aspects of dust formation have also been devoted particular attention. The influence of the edge plasma on the core has been investigated with upgraded active spectroscopy, providing new information on momentum transport and the effects of impurity injection on ELMs and ITBs and their interdependence. Given the fact that JET is the only machine with a plasma volume big enough to confine the alphas, a coherent programme of diagnostic developments for the energetic particles has been undertaken. With upgraded γ-ray spectroscopy and a new scintillator probe, it is now possible to study both the redistribution and the losses of the fast particles in various plasma conditions.

日本語訳

近年、JETの診断能力は大幅に向上し、研究対象となる物理現象の範囲が拡大したことにより、ITERに関連するいくつかの課題の理解が深まった。本論文で報告される最も重要な成果は、プラズマ・壁相互作用、コアとエッジの物理の相互作用、および高速粒子に関するものである。新しい赤外線カメラ、可視光カメラ、分光診断の併用により、プラズマ・壁相互作用の新たな側面の調査が可能となった。JET主容器のプラズマ対向機器への熱負荷は、定常状態およびELMやディスラプションなどの過渡事象中において評価された。新しい高速可視光カメラと高分解能トムソン散乱計測により、エッジ領域におけるフィラメント構造の証拠が収集された。また、非接触プラズマの物理とダスト生成の新たな側面にも特に注目が払われた。エッジプラズマがコアプラズマに及ぼす影響は、改良された主動分光診断を用いて調査され、運動量輸送および不純物入射がELMやITBに及ぼす影響とそれらの相互依存性に関する新たな知見が得られた。JETはアルファ粒子を閉じ込めるのに十分なプラズマ体積を有する唯一の装置であることから、高エネルギー粒子に関する診断開発の一貫したプログラムが実施されている。改良されたガンマ線分光と新しいシンチレータプローブにより、様々なプラズマ条件下での高速粒子の再分布と損失の両方を研究することが可能となった。

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