Drift-Alfvén turbulence in a tokamak wall plasma

被引:0
|
作者
R. V. Shurygin
机构
[1] Russian Research Centre Kurchatov Institute,
来源
Plasma Physics Reports | 2004年 / 30卷
关键词
Turbulent Flux; Plasma Layer; Electron Drift; Plane Wall; Plasma Edge;
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学科分类号
摘要
The behavior of turbulent fluxes in the vicinity of a resonant point m/n=q(xres) in a plane wall plasma layer in a tokamak is studied by numerically analyzing the nonlinear MHD equations in a four-field electromagnetic model. Simulations show that, as the electron temperature at the plasma edge increases, the intensity of turbulent particle flux decreases, reaching its minimum value, and then increases. Such behavior is found to be due to the stabilizing effect of the electron drift velocity (Vy0∼dTe0/dx) in the equation for the longitudinal component of the magnetic potential. It is shown that, at a strong toroidal magnetic field, turbulent transport processes conform to the gyro-Bohm scaling, which gradually passes over to the Bohm scaling as the field decreases.
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页码:353 / 362
页数:9
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