实现负三角形高辐射等离子体以及反应堆相关种子杂质对约束和传输的影响

L. Casali, D. Eldon, T. Odstrcil, R. Mattes, A. Welsh, K. Lee, A. O. Nelson, C. Paz-Soldan, F. Khabanov, T. Cote, A. G. McLean, F. Scotti, K. E. Thome
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引用次数: 0

摘要

通过注入与反应堆相关的种子气体,在高格林瓦尔德分率下实现了高核心辐射的运行空间,显示了负三角形高辐射等离子体的首次成就。这些负三角形(NT)形状的分流放电在高辐射分率下达到很高的归一化等离子体压力值(BetaN > 2),而且没有 ELM。我们证明,只要内核中的杂质含量保持在较低水平,以避免燃料的过度稀释和杂质的积累,在高辐射分率下整合 NT 配置不仅是可行的,而且还能通过碰撞性、ExB 剪切和杂质辐射冷却引起的剖面变化所产生的稳定效应来改善约束。其基本物理机制是稳健的,适用于各种杂质。由于不需要保持 H 模式,NT 形状中可能允许更高的堆芯辐射分数,从而有效地缓解了功率耗尽问题。本文介绍的结果展示了一条通往高性能、无 ELM 和高辐射状态的道路,与反应堆相关的种子气体使这一状态成为反应堆运行的潜在新方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Achievement of highly radiating plasma in negative triangularity and effect of reactor-relevant seeded impurities on confinement and transport
The first achievement of highly radiating plasmas in negative triangularity is shown with an operational space featuring high core radiation at high Greenwald fraction obtained with the injection of reactor-relevant seeded gases. These negative triangularity (NT) shape diverted discharges reach high values of normalized plasma pressure (BetaN > 2) at high radiation fraction with no ELMs. We demonstrate that as long as the impurity level in the core is kept low to avoid excessive fuel dilution and impurity accumulation, integration of NT configuration with high radiation fraction not only is achievable but it can lead to confinement improvement with stabilization effects originating from collisionality, ExB shear and profiles changes due to impurity radiation cooling. The underlying physics mechanism is robust and holds for a variety of impurity species. The absence of the requirement to stay in H-mode translates in a higher core radiation fraction potentially allowed in NT shape effectively mitigating the power exhaust issue. The results presented here demonstrate a path to high performance, ELM free and highly radiative regime with rector-relevant seeding gases making this regime a potential new scenario for reactor operation.
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