用于陀螺动力学拟线性输运模型的饱和规则的比较

IF 2.6 3区 物理与天体物理 Q3 ENGINEERING, CHEMICAL Plasma Chemistry and Plasma Processing Pub Date : 2023-10-12 DOI:10.3390/plasma6040042
Scott E. Parker, Calder S. Haubrich, Stefan Tirkas, Qiheng Cai, Yang Chen
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引用次数: 0

摘要

基于理论的输运模型建立在拟线性理论的基础上,已经取得了广泛的成功。具体来说,通量的拟线性表达式可以与环面模态振幅的饱和规则结合使用。大多数传输模型都遵循这种方法。饱和规则是启发式的,很难严格推导出来。我们比较了三种常见的饱和规则使用相当精确的准线性表达式的通量计算使用局部线性回旋动力学模拟。我们从实验h模式剖面和磁平衡中获取等离子体参数,包括电子、氘和碳种。我们发现,各种饱和规则提供了定性相似的行为。这可能有助于解释为什么不同的基于理论的输运模型都能相当好地预测核心托卡马克剖面。讨论了与非线性局部和全局陀螺动力学模拟的比较。
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Comparison of Saturation Rules Used for Gyrokinetic Quasilinear Transport Modeling
Theory-based transport modeling has been widely successful and is built on the foundations of quasilinear theory. Specifically, the quasilinear expression of the flux can be used in combination with a saturation rule for the toroidal mode amplitude. Most transport models follow this approach. Saturation rules are heuristic and difficult to rigorously derive. We compare three common saturation rules using a fairly accurate quasilinear expression for the fluxes computed using local linear gyrokinetic simulation. We take plasma parameters from experimental H-mode profiles and magnetic equilibrium and include electrons, deuterium, and carbon species. We find that the various saturation rules provide qualitatively similar behavior. This may help to explain why the different theory-based transport models can all predict core tokamak profiles reasonably well. Comparisons with nonlinear local and global gyrokinetic simulations are discussed.
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来源期刊
Plasma Chemistry and Plasma Processing
Plasma Chemistry and Plasma Processing 工程技术-工程:化工
CiteScore
5.90
自引率
8.30%
发文量
73
审稿时长
6-12 weeks
期刊介绍: Publishing original papers on fundamental and applied research in plasma chemistry and plasma processing, the scope of this journal includes processing plasmas ranging from non-thermal plasmas to thermal plasmas, and fundamental plasma studies as well as studies of specific plasma applications. Such applications include but are not limited to plasma catalysis, environmental processing including treatment of liquids and gases, biological applications of plasmas including plasma medicine and agriculture, surface modification and deposition, powder and nanostructure synthesis, energy applications including plasma combustion and reforming, resource recovery, coupling of plasmas and electrochemistry, and plasma etching. Studies of chemical kinetics in plasmas, and the interactions of plasmas with surfaces are also solicited. It is essential that submissions include substantial consideration of the role of the plasma, for example, the relevant plasma chemistry, plasma physics or plasma–surface interactions; manuscripts that consider solely the properties of materials or substances processed using a plasma are not within the journal’s scope.
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