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托卡马克边缘湍流中简单氢同位素标度律的反转

Reversal of Simple Hydrogenic Isotope Scaling Laws in Tokamak Edge Turbulence.

作者信息

Belli E A, Candy J, Waltz R E

机构信息

General Atomics, P.O. Box 85608, San Diego, California 92186-5608, USA.

出版信息

Phys Rev Lett. 2020 Jul 3;125(1):015001. doi: 10.1103/PhysRevLett.125.015001.

Abstract

The role of nonadiabatic electrons in regulating the hydrogenic isotope-mass scaling of gyrokinetic turbulence in tokamak fusion plasmas is assessed in the transition from ion-dominated core transport regimes to electron-dominated edge transport regimes. We propose a new isotope-mass scaling law that describes the electron-to-ion mass-ratio dependence of turbulent ion and electron energy fluxes. The mass-ratio dependence arises from the nonadiabatic response associated with fast electron parallel motion and plays a key role in altering-and in the case of the DIII-D edge, favorably reversing-the naive gyro-Bohm scaling behavior. In the reversed regime hydrogen energy fluxes are larger than deuterium fluxes, which is the opposite of the naive prediction.

摘要

在从离子主导的核心输运区域向电子主导的边缘输运区域的转变过程中,评估了非绝热电子在调节托卡马克聚变等离子体中陀螺动力学湍流的氢同位素质量标度方面的作用。我们提出了一种新的同位素质量标度律,它描述了湍流离子和电子能量通量对电子与离子质量比的依赖性。这种质量比依赖性源于与快速电子平行运动相关的非绝热响应,并且在改变——在DIII-D边缘的情况下,有利地反转——朴素的陀螺-玻姆标度行为方面起着关键作用。在反转区域,氢能量通量大于氘通量,这与朴素预测相反。

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