Equilibrium radial ExB effects on ion temperature gradient instability in the scrape-off layer of a field-reversed configuration
ORAL
Abstract
Linear and nonlinear effects of the equilibrium radial electric field on the ITG instability in the SOL of a FRC have been studied using gyrokinetic particle simulations for a single toroidal mode. Linear simulations with adiabatic electrons find that the E×B flow shear reduces the growth rate and causes a radial tilting of the mode structure on the toroidal plane. Nonlinear simulations find that the E×B flow shear significantly decreases ITG saturation amplitude and ion heat transport in the SOL by reducing both turbulence intensity and eddy size. The turbulence intensity is determined by fluid eddy rotation, which dominates the saturation mechanism for the SOL ITG. On the other hand, parallel wave-particle decorrelation determines the SOL ITG turbulent transport. A random walk model using the guiding center radial excursion as the characteristic length scale and the eddy turnover time as the characteristic time scale fits well to the scaling of ion heat conductivity with the E×B flow shear.
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Publication: Wang, W.H., Bao, J., Wei, X.S., Lin, Z., Choi, G.J., Dettrick, S., Kuley, A., Lau, C., Liu, P.F. and Tajima, T., 2021. Effects of equilibrium radial electric field on ion temperature gradient instability in the scrape-off layer of a field-reversed configuration. Plasma Physics and Controlled Fusion, 63(6), p.065001.
Presenters
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Wenhao Wang
University of California, Irvine
Authors
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Wenhao Wang
University of California, Irvine
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Xishuo Wei
University of California, Irvine
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Zhihong Lin
University of California, Irvine