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Integrated, advanced tokamak operation on DIII-D

机译:DIII-D上集成的高级托卡马克操作

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Recent experiments on DIII-D have demonstrated the ability to sustain plasma conditions that integrate and sustain the key ingredients of advanced tokamak (AT) operation: high β with 1.5 < q_(min) < 2.5, good energy confinement, and high current drive efficiency. Utilizing off-axis (ρ = 0.4) electron cyclotron current drive (ECCD) to modify the current density profile in a plasma operating near the no-wall ideal stability limit with q_(min) > 2.0, plasmas with β ≈ 2.9% and 90% of the plasma current driven non-inductively have been sustained for nearly 2 s (limited only by the duration of the ECCD pulse). Negative central magnetic shear is produced by the ECCD, leading to the formation of a weak internal transport barrier even in the presence of Type Ⅰ ELMs. Separate experiments have demonstrated the ability to sustain a steady current density profile using ECCD for periods as long as 1 s with β = 3.3% and >90% of the current driven non-inductively. In addition, stable operation well above the ideal no-wall β limit has been sustained for several energy confinement times with the duration only limited by resistive relaxation of the current profile to an unstable state. Stability analysis indicates that the experimental β limit depends on the degree to which the no-wall limit can be exceeded and weakly on the actual no-wall limit. Achieving the necessary density levels required for adequate ECCD efficiency requires active divertor exhaust and reducing the wall inventory buildup prior to the high performance phase. Simulation studies indicate that the successful integration of high β operation with current profile control consistent with these experimental results should result in high β, fully non-inductive plasma operation.
机译:最近在DIII-D上进行的实验表明,能够维持整合并维持高级托卡马克(AT)操作关键要素的等离子体条件:1.5≤q_(min)<2.5的高β值,良好的能量限制和高电流驱动效率。利用离轴(ρ= 0.4)电子回旋加速器电流驱动(ECCD)来修改在无壁理想稳定性极限(q_(min)> 2.0),β≈2.9%和90的等离子体附近工作的等离子体中的电流密度分布非感应驱动的等离子电流的%持续了将近2 s(仅受ECCD脉冲的持续时间限制)。 ECCD产生负的中心磁剪切力,即使在Ⅰ型ELM的存在下也导致形成较弱的内部传输势垒。单独的实验表明,使用ECCD可以维持稳定的电流密度曲线长达1 s的时间,其中β= 3.3%,且非感应电流的> 90%。此外,在理想的无壁β极限以上,稳定的运行已经持续了数次能量限制时间,其持续时间仅受电流分布的电阻松弛到不稳定状态的限制。稳定性分析表明,实验β极限取决于可超过无壁极限的程度,而实际上取决于实际的无壁极限。为了获得足够的ECCD效率所需的必要密度水平,需要主动的偏滤器排气并在高性能阶段之前减少墙壁库存的增加。仿真研究表明,与这些实验结果一致的高β操作与电流轮廓控制的成功集成应该会导致高β完全无感的等离子体操作。

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