M.W. Lee, S.-H. Hahn, D. Kim, J. Kang, W.H. Ko, J. Jang, W. Lee and C. Sung
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引用次数: 0
摘要
我们在 KSTAR 中观测到了一种具有双传输势垒 (DTB) 的静态高约束机制,其中包括内部和边缘传输势垒(ITB 和 ETB),但没有边缘定位模式 (ELM)。无 ELM 的 DTB 相具有很高的热约束性,可与 KSTAR 中典型的 H 模式运行相媲美。我们通过各种分析研究了 DTB 阶段的特性。传输分析表明,从 ELMy H 模式阶段过渡到 DTB 阶段后,离子热扩散率降低到接近新古典水平。这一结果支持在 DTB 阶段形成离子 ITB。此外,我们还观察到 DTB 阶段的离子温度曲线中存在边缘热传输障碍,与 H 模式相类似,但边缘没有粒子传输障碍。剥离-气球稳定性分析表明,DTB 相中密度下降导致的较低压力梯度是无 ELM 运行的主要原因。线性陀螺动力学分析表明,在 H 模式和 DTB 阶段,核心区域最不稳定模式的实际频率(= 0.32-0.47)都位于离子二磁方向。在 DTB 阶段,与 ITB 脚相比,ITB 内部的线性增长率降低了 50%,而在 H 模式阶段则没有降低。为了更好地理解这种独特的运行模式,还需要进行包括非线性效应在内的进一步研究,这有助于将来将物理机制应用于聚变反应堆。
Observation of a stationary double transport barrier in KSTAR
We have observed a stationary high confinement regime with a double transport barrier (DTB), including both internal and edge transport barriers (ITB and ETB) but without edge-localized modes (ELMs), in KSTAR. The ELM-free DTB phase has high thermal confinement comparable to typical H-mode operation in KSTAR. We investigated the characteristics of the DTB phase through various analyses. Transport analysis shows a reduction of ion heat diffusivity to near neoclassical level after the transition from the ELMy H-mode phase to the DTB phase. This result supports the formation of an ion ITB during the DTB phase. Furthermore, we observed that the DTB phase had an edge thermal transport barrier in the ion temperature profile, comparable to that of the H-mode, without a particle transport barrier at the edge. Peeling-ballooning stability analysis indicates that a lower pressure gradient due to density decrease in the DTB phase is mainly responsible for the ELM-free operation. Linear gyrokinetic analysis shows that the real frequency of the most unstable mode in the core region ( = 0.32–0.47) is in the ion diamagnetic direction at both H-mode and DTB phases. At the DTB phase, the linear growth rate inside the ITB is reduced by 50% compared to the ITB foot, while the reduction is not shown at the H-mode phase. Further investigation including nonlinear effects will be needed to better understand the unique operation mode, which can contribute to applying the physical mechanism to fusion reactors in the future.
期刊介绍:
Nuclear Fusion publishes articles making significant advances to the field of controlled thermonuclear fusion. The journal scope includes:
-the production, heating and confinement of high temperature plasmas;
-the physical properties of such plasmas;
-the experimental or theoretical methods of exploring or explaining them;
-fusion reactor physics;
-reactor concepts; and
-fusion technologies.
The journal has a dedicated Associate Editor for inertial confinement fusion.