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Zonal Flow Excitation in Electron-Scale Tokamak Turbulence

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arxiv 2211.02140 v2 pith:6ZCSTPOP submitted 2022-11-03 physics.plasm-ph

Zonal Flow Excitation in Electron-Scale Tokamak Turbulence

classification physics.plasm-ph
keywords zonalflowintermediate-scaleresultsmodessingle-modeelectronelectron-scale
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The derivation of an intermediate-scale gyrokinetic-electron theory in nonuniform tokamak plasmas [Chen H. et al 2021 Nucl. Fusion 61 066017] has shown that a Navier-Stokes type nonlinearity couples electron-temperature-gradient (ETG) modes and zonal flow (ZF) modes with wavelengths much shorter than the ion gyroradius but much longer than the electron gyroradius. This intermediate-scale ETG-ZF coupling is typically stronger than the Hasegawa-Mima type nonlinearity characteristic of the fluid approximation and is predicted to lead to relevant zonal flow generation and ETG mode regulation. Electron-scale, continuum, gyrokinetic simulation results are presented here which include both single-mode ETG and full-spectrum ETG turbulence. The zonal flow generation due to single ETG modes is investigated and the single-mode intermediate-scale results are found to be in agreement with theory. The full-spectrum results are then presented and explained qualitatively in terms of the single-mode results. It is found that the ETG-driven zonal flows regulate intermediate-scale electron heat flux transport to levels in the predicted range.

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