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EAST steady-state long pulse H-mode with core-edge integration for CFETR

X.Z. Gong, A.M. Garofalo, J. Huang, J.P. Qian, A. Ekedah, R. Maingi, C.T. holcomb, F.K. Liu, Y.P. Zhao, B.J. Xiao2022年被引用 16Nuclear FusionIF 3出版社

A recent EAST experiment has successfully demonstrated long pulse steady-state high plasma performance scenario and core-edge integration since the last IAEA in 2018. A discharge with a duration over 60 s with βP ∼ 2.0, βN ∼ 1.6, H98y2 ∼ 1.3 and an internal transport barrier on the electron temperature channel is obtained with multi-RF power heating and current drive. A higher βN (βN ∼ 1.8, βp ∼ 2.0, H98y2 ∼ 1.3, ne/nGW ∼ 0.75) with a duration of 20 s is achieved by using the modulated neutral beam and multi-RF power, where several normalized parameters are close or even higher than the phase III 1 GW scenario of CFETR steady-state. High-Z impurity accumulation in the plasma core is well controlled in a low level by using the on-axis ECH. Modeling shows that the strong diffusion of TEM turbulence in the central region prevents tungsten impurity from accumulating. More recently, EAST has demonstrated compatible core-edge integration discharges in the high βp scenario: high confinement H98y2 > 1.2 with high βP ∼ 2.5/βN ∼ 2.0 and fbs ∼ 50% is sustained with reduced divertor heat flux at high density ne/nGW ∼ 0.7 and moderate q95 ∼ 6.7. By combining active impurity seeding through radiative divertor feedback control and strike point splitting induced by resonant perturbation coil, the peak heat flux is reduced by 20–30% on the ITER-like tungsten divertor, here a mixture of 50% neon and 50% D2 is applied.

日本語訳

最近のEAST実験では、2018年の前回IAEA以降、長時間の定常高プラズマ性能シナリオとコア・エッジ統合が実証された。βP ∼ 2.0、βN ∼ 1.6、H98y2 ∼ 1.3、電子温度チャネルにおける内部輸送障壁を有する60秒超の放電が、マルチRFパワー加熱・電流駆動により達成された。変調中性粒子ビームとマルチRFパワーを用いることで、βN ∼ 1.8、βp ∼ 2.0、H98y2 ∼ 1.3、ne/nGW ∼ 0.75を有する20秒間のより高いβNが達成され、そのうち複数の規格化パラメータはCFETR定常状態フェーズIII 1GWシナリオの値に近いか、あるいはそれを上回る。プラズマコアにおける高Z不純物の蓄積は、オンアクシスECHを用いることで低レベルに良好に抑制された。モデリングにより、中心領域におけるTEM乱流の強い拡散がタングステン不純物の蓄積を防止することが示された。さらに最近では、EASTは高βpシナリオにおけるコア・エッジ統合放電を実証している。すなわち、高閉じ込めH98y2 > 1.2、高βP ∼ 2.5/βN ∼ 2.0、fbs ∼ 50%が、高密度ne/nGW ∼ 0.7、中程度のq95 ∼ 6.7において、ダイバータ熱流束の低減とともに維持された。放射ダイバータフィードバック制御による能動的不純物シーディングと、共鳴摂動コイルによるストライク点分割を組み合わせることで、ITER類似タングステンダイバータ上のピーク熱流束は20〜30%低減された。ここでは50%ネオンと50% D2の混合ガスが適用された。

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east高精度(タイトル一致)iter低精度(概要文一致)

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EASTH-modeSteady stateCFETR
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