Experiments and modelling of negative triangularity ASDEX Upgrade plasmas in view of DTT scenarios

Lorenzo Aucone, Paola Mantica, Tim Happel, Joerg Hobirk, T. Pütterich, Branka Vanovac, C. F. B. Zimmermann, Matthias Bernert, Tommaso Bolzonella, Marco Cavedon, M. Dunne, Rainer Fischer, Paolo Innocente, Athina Kappatou, Rachael M McDermott, A. Mariani, Paola Muscente, U. Plank, Francesco Sciortino, Giovanni Tardini
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Abstract

The paper presents experimental and modelling results of a comparison of negative (NT) and positive (PT) triangularity ASDEX Upgrade (AUG) discharges using the plasma shapes presently foreseen in the DTT tokamak, under construction in Italy. This work is part of a broader effort of investigation to understand whether the good properties observed in NT scenarios in DIII-D and TCV may be extrapolated to the DTT device and more in general to DEMO future operations. The experimental results have shown a practical gain of running these AUG plasmas with only ECRH and mixed NBI+ECRH phases in negative triangularity, even if they access the H-mode. Indeed, the NT electron kinetic profiles recover in all cases the PT electron pressures inside mid-radius due to reduced transport in the region ρtor = 0.7 − 0.9, while exhibit lower individual ELM (Edge Localised Mode) energy losses. The ion pressure and expected fusion performance are comparable in the case of similar densities. Integrated modelling has been performed using the transport solver ASTRA and the quasi-linear turbulent model TGLF, investigating the transport properties of these discharges. The modelling reproduces the experiments qualitatively with reasonable accuracy. Nonetheless, the heat transport in NT cases is partially overestimated. This may be because TGLF uses the Miller equilibrium, which approximates the magnetic flux surfaces as up-down symmetric. In the case of these asymmetric NT shapes, the simulated outer surfaces lose part of the tilt with respect to the z-axis, reducing the upper δ < 0 effect. A numerical test to discern the impact of the geometry by symmetrically flipping the shape has shown a beneficial effect of the negative triangularity on heat transport.
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针对 DTT 方案的负三角形 ASDEX 升级等离子体的实验和建模
本文介绍了利用意大利在建的 DTT 托卡马克目前预计的等离子体形状,对负(NT)和正(PT)三角形 ASDEX 升级(AUG)放电进行比较的实验和建模结果。这项工作是更广泛的调查工作的一部分,目的是了解在 DIII-D 和 TCV 中的 NT 方案中观察到的良好特性是否可以推广到 DTT 设备中,更广泛地说,是否可以推广到 DEMO 的未来运行中。实验结果表明,在运行这些AUG等离子体时,只有ECRH相和NBI+ECRH混合相处于负三角状态,即使它们进入了H模式,也能获得实际收益。事实上,由于ρtor = 0.7 - 0.9区域的传输减少,NT电子动力学剖面在所有情况下都能恢复中半径内的PT电子压力,同时显示出较低的单个ELM(边缘局部模式)能量损失。在密度相似的情况下,离子压力和预期聚变性能具有可比性。利用传输求解器 ASTRA 和准线性湍流模型 TGLF 进行了综合建模,研究了这些放电的传输特性。建模以合理的精度定性地再现了实验结果。然而,NT 情况下的热量传输被部分高估。这可能是因为 TGLF 使用了米勒平衡,将磁通表面近似为上下对称。在这些非对称 NT 形状的情况下,模拟的外表面失去了部分相对于 Z 轴的倾斜度,从而降低了上δ < 0 的效应。通过对称翻转形状来辨别几何形状影响的数值测试表明,负三角形对热传输具有有利影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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